{"meta":{"query_hash":"ffd2cbea9302","filters":{"venue":"Physical review. B, Condensed matter"},"cohort_total":323,"direct_labels_cover":1,"predictions_cover":323,"exported":323,"export_cap":100000,"truncated":false,"label_status":"direct model label, unvalidated","prediction_status":"machine_predicted_unvalidated (Codex and Gemma teacher distillation)","score_status":"score_only:v0-immature-baseline","snapshot":{"source":"OpenAlex, pinned release, all 482 partitions","release":"2026-06-24","frame_built":"2026-07-12"},"permalink":"https://metacan.xera.ac/q/ffd2cbea9302","api":"https://metacan.xera.ac/api/v1/cohort?venue=Physical+review.+B%2C+Condensed+matter"},"results":[{"id":"W118797567","doi":"10.1103/physrevb.65.064428","title":"Magnetic properties of amorphous<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>90</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mn</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Zr</mml:mi></mml:mrow><mml:mrow><mml:mn>10</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>(</mml:mo><mml:mn>0</mml:mn><mml:mn/><mml:mo>&lt;~</mml:mo><mml:mi>x</mml:mi><mml:mo>&lt;~</mml:mo><mml:mn>1</mml:mn><mml:mn>2</mml:mn><mml:mo>)</mml:mo></mml:math>alloys","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Dalhousie University; Council of Scientific and Industrial Research, India","keywords":"Magnetization; Condensed matter physics; Physics; Curie temperature; Atmospheric temperature range; Amorphous solid; Materials science; Magnetic field; Crystallography; Thermodynamics; Ferromagnetism; Chemistry; Quantum mechanics","score_opus":0.015880192479361028,"score_gpt":0.2324560699707191,"score_spread":0.21657587749135807,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W118797567","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.83053327,0.0026318391,0.0048837126,0.00081832736,0.0003811903,0.00005961324,0.00908636,0.0008884169,0.15071729],"genre_scores_gemma":[0.9214414,0.0010315839,0.0024395606,0.00023284613,0.000060188024,0.000037862315,0.010045813,0.00044393225,0.064266816],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998759,0.000010857538,0.0000056740723,0.000033007796,0.000041557738,0.000032952034],"domain_scores_gemma":[0.99978465,0.000038322345,0.00003209754,0.000024586745,0.00009436241,0.000026002977],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016827078,0.00028186123,0.00017757947,0.0004900038,0.00054011145,0.0008433665,0.0003941121,0.00038238944,0.021896204],"category_scores_gemma":[0.0004797234,0.00019915671,0.00016530942,0.00053826155,0.0002132388,0.00041517822,0.00017622969,0.00060817593,0.003449497],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0014656986,0.00017203926,0.0039913226,0.0008459635,0.0000941454,0.00076587166,0.00065981474,0.0039675664,0.87554145,0.015056062,0.07363083,0.023809154],"study_design_scores_gemma":[0.0000847932,0.0005751883,0.024998507,0.00015300157,0.000108876615,0.00029874718,0.0008563438,0.011324067,0.8552577,0.0013735844,0.10490286,0.000066318746],"about_ca_topic_score_codex":0.0074674543,"about_ca_topic_score_gemma":0.011175876,"teacher_disagreement_score":0.021896204,"about_ca_system_score_codex":0.00052096054,"about_ca_system_score_gemma":0.00026884684,"threshold_uncertainty_score":0.073250115},"labels":[],"label_agreement":null},{"id":"W145183773","doi":"10.1103/physrevb.66.085313","title":"Band-gap energy of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">In</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">N</mml:mi></mml:mrow><mml:mrow><mml:mi>y</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">As</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>y</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>as a function of N content","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":61,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Band gap; Annealing (glass); Molecular beam epitaxy; Blueshift; Atom (system on chip); Materials science; Electronic band structure; Physics; Atomic physics; Epitaxy; Molecular physics; Condensed matter physics; Analytical Chemistry (journal); Photoluminescence; Optoelectronics; Chemistry; Nanotechnology; Computer science; Thermodynamics","score_opus":0.021017709564260533,"score_gpt":0.2472020046311801,"score_spread":0.2261842950669196,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W145183773","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.1019728,0.0022889844,0.02076729,0.004709563,0.0023238622,0.00005925701,0.008922848,0.002664001,0.8562913],"genre_scores_gemma":[0.63174117,0.0016399537,0.020086002,0.0019277398,0.000119267475,0.0004106421,0.022477044,0.005274326,0.3163238],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99979275,0.000012555028,0.000004177331,0.000039047656,0.00006996731,0.00008153426],"domain_scores_gemma":[0.9998883,0.000026330721,0.0000069645675,0.000023591361,0.00003226544,0.00002254281],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016785157,0.0009238155,0.000755316,0.0010647491,0.0019830537,0.002177216,0.001256369,0.002118008,0.18534139],"category_scores_gemma":[0.00048048724,0.00034963238,0.00047582117,0.0008703973,0.00042460606,0.0013351153,0.0012508736,0.0018804991,0.040455155],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00069187453,0.00034155193,0.0022101707,0.0010879386,0.00009231493,0.0010535645,0.0005459398,0.006980762,0.06329389,0.3592813,0.5019144,0.06250635],"study_design_scores_gemma":[0.00016315916,0.00046665198,0.011394746,0.0006149077,0.00011793466,0.0015619432,0.001763432,0.077304475,0.122733995,0.18111877,0.6024836,0.00027638988],"about_ca_topic_score_codex":0.0030978909,"about_ca_topic_score_gemma":0.0046107513,"teacher_disagreement_score":0.18534139,"about_ca_system_score_codex":0.0015984388,"about_ca_system_score_gemma":0.00064638775,"threshold_uncertainty_score":0.62002873},"labels":[],"label_agreement":null},{"id":"W1495474477","doi":"10.1103/physrevb.64.172506","title":"Localized surface states in high-temperature superconductors: Alternative mechanism of zero-bias conductance peaks","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Condensed matter physics; Quasiparticle; Superconductivity; Conductance; Quantum tunnelling; Zero (linguistics); Zero temperature; Physics; Materials science","score_opus":0.020157550132296337,"score_gpt":0.2843469816713387,"score_spread":0.2641894315390424,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1495474477","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97410494,0.0017195562,0.016094072,0.0004587659,0.00007706949,0.000012030417,0.00003700925,0.00019731991,0.0072991457],"genre_scores_gemma":[0.99798393,0.00033159793,0.0011197932,0.000028968876,0.000016499342,0.0000054725715,0.000012561797,0.00001224052,0.0004888423],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99994373,0.000011962467,0.0000025500844,0.000009036386,0.000017630873,0.000015132882],"domain_scores_gemma":[0.9998603,0.00006897314,0.000018519484,0.000021761394,0.000016043567,0.000014419593],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017313176,0.00021537983,0.00029176063,0.00043589872,0.00029197655,0.0009693469,0.00042154617,0.0007208948,0.001484603],"category_scores_gemma":[0.00033495872,0.0001885553,0.00026711557,0.0002589009,0.0011432949,0.00080831046,0.00042348672,0.00045201028,0.00024226982],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003828898,0.0000925195,0.0048617986,0.00046588705,0.000057121015,0.002176721,0.0009933191,0.008035269,0.7202151,0.24535178,0.0011619203,0.016205695],"study_design_scores_gemma":[0.00024024516,0.0006337693,0.017198438,0.00012917869,0.00014855151,0.0043465565,0.0011027632,0.2521983,0.34051037,0.3788019,0.004579164,0.000110710396],"about_ca_topic_score_codex":0.00014858351,"about_ca_topic_score_gemma":0.00024947908,"teacher_disagreement_score":0.001484603,"about_ca_system_score_codex":0.00018718674,"about_ca_system_score_gemma":0.00011041686,"threshold_uncertainty_score":0.0049664974},"labels":[],"label_agreement":null},{"id":"W1504322808","doi":"10.1103/physrevb.68.165320","title":"Phonons in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">In</mml:mi></mml:mrow><mml:mrow><mml:mn>0.53</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>0.47</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">A</mml:mi><mml:mi mathvariant=\"normal\">s</mml:mi><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">I</mml:mi><mml:mi mathvariant=\"normal\">n</mml:mi><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mn/><mml:mo>(</mml:mo><mml:mn>100</mml:mn><mml:mo>)</mml:mo><mml:mn/></mml:math>superlattices by infrared reflectance","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences; National Research Council Canada","funders":"","keywords":"Phonon; Superlattice; Alloy; Condensed matter physics; Materials science; Epitaxy; Lattice (music); Physics; Layer (electronics); Nanotechnology","score_opus":0.01640435733381483,"score_gpt":0.25459722156972325,"score_spread":0.2381928642359084,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1504322808","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.005449138,0.00060626207,0.18029357,0.0044707414,0.005239583,0.00047211343,0.09828986,0.21533497,0.48984385],"genre_scores_gemma":[0.037013866,0.00084118027,0.067017235,0.0025087965,0.0004576448,0.0008937741,0.09629022,0.13571851,0.6592588],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99868184,0.00015388284,0.00008780749,0.00020419515,0.0007187772,0.00015348535],"domain_scores_gemma":[0.99772555,0.0005453948,0.000088419445,0.00063486054,0.00085966126,0.00014612002],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0013472589,0.0024062044,0.0011832499,0.0022814395,0.001857113,0.005190449,0.002961611,0.002863189,0.5848305],"category_scores_gemma":[0.0063123005,0.0016893928,0.0015401805,0.002042513,0.00088131643,0.005461613,0.00288562,0.0032115409,0.45921132],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00022483585,0.000093999,0.0005780733,0.00033893302,0.000021427599,0.00016204346,0.00030530733,0.0013261097,0.004888163,0.022289682,0.9293978,0.040373478],"study_design_scores_gemma":[0.00009117706,0.000036757938,0.0007752941,0.0000968186,0.000017284696,0.00017647176,0.00023833697,0.005155945,0.00980057,0.012963886,0.9705593,0.00008824434],"about_ca_topic_score_codex":0.012876209,"about_ca_topic_score_gemma":0.013800718,"teacher_disagreement_score":0.5848305,"about_ca_system_score_codex":0.002499444,"about_ca_system_score_gemma":0.00211502,"threshold_uncertainty_score":0.59218884},"labels":[],"label_agreement":null},{"id":"W1506575204","doi":"10.1103/physrevb.66.155308","title":"Double quantum dots: Kondo resonance induced by an interdot interaction","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":82,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Kondo effect; Quantum dot; Resonance (particle physics); Physics; Condensed matter physics; Coupling (piping); Kondo insulator; Conductance; Electron; Quantum mechanics; Materials science","score_opus":0.025167447013767514,"score_gpt":0.3019436732047078,"score_spread":0.2767762261909403,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1506575204","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99439853,0.00021478657,0.0034637118,0.000034021457,0.000012366208,0.0000078057055,0.0000152447365,0.000030844916,0.0018226726],"genre_scores_gemma":[0.9976767,0.000100523954,0.0016884584,0.000011295117,0.00000275477,0.000005352401,0.000012964497,0.0000050259387,0.00049699674],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999118,0.000012077125,0.000003257773,0.000026181498,0.000031399406,0.000015386173],"domain_scores_gemma":[0.9998926,0.000039340914,0.00001897729,0.000021563417,0.000011389378,0.00001612992],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008664842,0.00018953244,0.00027896534,0.000106205014,0.00036176245,0.00036043246,0.00025012545,0.00031538517,0.0005635209],"category_scores_gemma":[0.0001801032,0.00012212357,0.000132303,0.00013267176,0.00035885806,0.0003097358,0.0003523214,0.00040938944,0.0000779845],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008555367,0.00004641524,0.00057458726,0.00009683246,0.000013262486,0.00066876423,0.0001395582,0.0020613167,0.9855493,0.008995555,0.00008228243,0.0016866418],"study_design_scores_gemma":[0.000049075927,0.00047593607,0.0035511805,0.000014021843,0.000036464568,0.0010592741,0.000105418774,0.06114698,0.92647505,0.0037518924,0.0033065542,0.00002822311],"about_ca_topic_score_codex":0.00032656093,"about_ca_topic_score_gemma":0.00056119735,"teacher_disagreement_score":0.0005635209,"about_ca_system_score_codex":0.00017669426,"about_ca_system_score_gemma":0.00007657223,"threshold_uncertainty_score":0.0018851757},"labels":[],"label_agreement":null},{"id":"W1517577439","doi":"10.1103/physrevb.62.15221","title":"Magnetic field as a probe of gap energy scales in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Computer science; Physics","score_opus":0.015366469348006211,"score_gpt":0.24407193663804788,"score_spread":0.22870546729004168,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1517577439","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.30712008,0.0020212652,0.08053141,0.007822142,0.0025112005,0.00016259075,0.013861043,0.01793905,0.5680312],"genre_scores_gemma":[0.82597053,0.0008850141,0.058562525,0.0015962508,0.00016391078,0.00034368006,0.008684129,0.009081551,0.09471236],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997514,0.000032360553,0.000010354996,0.00006112032,0.00009059484,0.000054184216],"domain_scores_gemma":[0.9994961,0.00015016693,0.000055369597,0.00008936587,0.00013698096,0.00007194267],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003736873,0.00047672604,0.00036193785,0.0011822218,0.0011389469,0.001743348,0.0009815206,0.0010661123,0.100171484],"category_scores_gemma":[0.0012157254,0.00035849956,0.00017716512,0.0008902573,0.0006195581,0.0019219045,0.00089588197,0.0019138486,0.015561717],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0027405776,0.0005517334,0.0059082294,0.0009621901,0.0000668099,0.0013222994,0.002179968,0.0037636308,0.37650242,0.20389923,0.30068523,0.10141762],"study_design_scores_gemma":[0.00028417128,0.0006279323,0.019227087,0.000214747,0.00007370733,0.0009244807,0.0033818616,0.023727356,0.49081978,0.059592698,0.40094998,0.0001761077],"about_ca_topic_score_codex":0.0017183275,"about_ca_topic_score_gemma":0.0023995943,"teacher_disagreement_score":0.100171484,"about_ca_system_score_codex":0.00087750587,"about_ca_system_score_gemma":0.0005548455,"threshold_uncertainty_score":0.33510697},"labels":[],"label_agreement":null},{"id":"W1581935251","doi":"10.1103/physrevb.61.12882","title":"Infrared study of crystal-field excitations in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nd</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ce</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Cerium; Antiferromagnetism; Crystal (programming language); Field (mathematics); Crystallography; Ion; Infrared; Doping; Energy (signal processing); Condensed matter physics; Materials science; Chemistry; Quantum mechanics; Mathematics","score_opus":0.017560960248944938,"score_gpt":0.25317734429603206,"score_spread":0.23561638404708712,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1581935251","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.72116756,0.001982301,0.016293477,0.004151526,0.0007946316,0.000055257235,0.004360757,0.0013823437,0.24981216],"genre_scores_gemma":[0.94208145,0.0011311781,0.006022284,0.0007423206,0.0000845248,0.0000863619,0.0039955433,0.00084277743,0.045013525],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99963903,0.000042858916,0.000007491245,0.00008370827,0.00011695391,0.00010999551],"domain_scores_gemma":[0.999554,0.00015998496,0.00006205766,0.000060970644,0.00012908521,0.00003396072],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040580853,0.00049282575,0.00044819555,0.0007043335,0.0016136849,0.00079438894,0.0011185367,0.0007829891,0.055796105],"category_scores_gemma":[0.0007185798,0.00023359977,0.00022856574,0.0012185503,0.00070838013,0.000990172,0.0005075209,0.002738671,0.0033196958],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0019887523,0.00049935805,0.0031416183,0.0011645032,0.00011578925,0.001420432,0.0016193448,0.003304424,0.76170146,0.031739697,0.15150425,0.04180037],"study_design_scores_gemma":[0.00021418306,0.00083899015,0.048561007,0.00040358354,0.00010006261,0.00081092503,0.0022791005,0.038538158,0.81263655,0.0050524096,0.09040012,0.00016497378],"about_ca_topic_score_codex":0.003825839,"about_ca_topic_score_gemma":0.006712524,"teacher_disagreement_score":0.055796105,"about_ca_system_score_codex":0.00088760874,"about_ca_system_score_gemma":0.00049438974,"threshold_uncertainty_score":0.18665653},"labels":[],"label_agreement":null},{"id":"W1582560323","doi":"10.1103/physrevb.62.15151","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mn>90</mml:mn><mml:mi>°</mml:mi></mml:math>reorientation in the vortex lattice of borocarbide superconductors","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Superconductivity; Lattice (music); Anisotropy; Condensed matter physics; Vortex; Physics; Quantum mechanics; Thermodynamics","score_opus":0.0178978309806625,"score_gpt":0.2686616286253692,"score_spread":0.2507637976447067,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1582560323","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.08868448,0.0069485437,0.24692747,0.020478042,0.0037789817,0.0002284047,0.003494147,0.007860414,0.62159956],"genre_scores_gemma":[0.4201757,0.005095417,0.08144287,0.001122445,0.0006103513,0.0001902852,0.0017043941,0.0024285482,0.48723006],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"not_applicable","domain_scores_codex":[0.9999722,0.000006975323,0.0000010048924,0.0000039501074,0.000010090645,0.0000057959023],"domain_scores_gemma":[0.9999492,0.000014180778,0.000011482936,0.000011679249,0.0000084050225,0.000005005293],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010594285,0.00032115963,0.00024594378,0.0005158755,0.00061161653,0.00090509077,0.0005231642,0.00041653423,0.07202556],"category_scores_gemma":[0.00022281603,0.00013877897,0.00020590666,0.00057934603,0.00055534707,0.0009512628,0.00028350038,0.00035996118,0.019707927],"study_design_candidate":"not_applicable","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000046354297,0.00004114682,0.00042512803,0.00021397532,0.000007561201,0.00038767804,0.000250325,0.0030751033,0.0117130345,0.74175763,0.1941913,0.047890853],"study_design_scores_gemma":[0.000019422723,0.00004012238,0.0019435186,0.000081097525,0.0000064363276,0.00094621215,0.0002353642,0.041131616,0.023570178,0.3342301,0.59775287,0.000042991083],"about_ca_topic_score_codex":0.0013858402,"about_ca_topic_score_gemma":0.0030635565,"teacher_disagreement_score":0.07202556,"about_ca_system_score_codex":0.00041004116,"about_ca_system_score_gemma":0.00016689784,"threshold_uncertainty_score":0.24094951},"labels":[],"label_agreement":null},{"id":"W15834126","doi":"10.1103/physrevb.64.024507","title":"Effect of magnetic field on impurity bound states in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>superconductors","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Bound state; Impurity; Physics; Condensed matter physics; Quasiparticle; Upper and lower bounds; Atomic physics; Quantum mechanics; Superconductivity; Mathematics; Mathematical analysis","score_opus":0.013639581025654945,"score_gpt":0.2581673248501014,"score_spread":0.24452774382444648,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W15834126","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9908178,0.0010294965,0.0016138521,0.00033005056,0.000065399414,0.0000071464497,0.000022909937,0.000100480276,0.0060128146],"genre_scores_gemma":[0.9985929,0.00032634012,0.00026461724,0.0000338182,0.000027538115,0.0000041947605,0.000015809104,0.000014363116,0.0007204831],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99988127,0.00003916181,0.0000024626563,0.000014270341,0.000022165577,0.000040662188],"domain_scores_gemma":[0.99962723,0.00021010078,0.000057228182,0.00002696563,0.000032778178,0.000045705412],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021097757,0.00019120329,0.00036424006,0.00041205564,0.00066237093,0.00053944724,0.0003986795,0.0002718009,0.0029866346],"category_scores_gemma":[0.0006121288,0.00017227989,0.00021750087,0.00023325525,0.0007044953,0.00043393605,0.000460429,0.00042139852,0.00022440139],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0061574504,0.00146167,0.0074655837,0.0016557325,0.0003392641,0.0028358747,0.0017066407,0.08585409,0.6987348,0.13667056,0.0072703073,0.049847934],"study_design_scores_gemma":[0.00059315114,0.0021226453,0.020156473,0.00011277735,0.0002967804,0.00054433645,0.00060941686,0.49389547,0.41748366,0.057197165,0.006772313,0.00021591542],"about_ca_topic_score_codex":0.0010302485,"about_ca_topic_score_gemma":0.0008506735,"teacher_disagreement_score":0.0029866346,"about_ca_system_score_codex":0.0004043269,"about_ca_system_score_gemma":0.000186049,"threshold_uncertainty_score":0.009991288},"labels":[],"label_agreement":null},{"id":"W1583629958","doi":"10.1103/physrevb.66.094112","title":"Ferroelectric properties of monoclinic<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">Pb</mml:mi><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbTiO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>crystals","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":45,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Monoclinic crystal system; Phase boundary; Ferroelectricity; Materials science; Dielectric; Piezoelectricity; Polarization (electrochemistry); Phase (matter); Crystallography; Analytical Chemistry (journal); Condensed matter physics; Crystal structure; Physics; Chemistry; Physical chemistry; Optoelectronics; Composite material","score_opus":0.022632384257049568,"score_gpt":0.24932475914953353,"score_spread":0.22669237489248395,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1583629958","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.90805256,0.004780872,0.0023165266,0.0017543887,0.0004312681,0.000037941947,0.0065432074,0.00031018656,0.07577301],"genre_scores_gemma":[0.9573604,0.0016227071,0.0015158058,0.0002228412,0.00007233201,0.000041881525,0.005771477,0.00015230561,0.033240154],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99986696,0.000012189469,0.0000043137698,0.000021832444,0.00005371377,0.000041005183],"domain_scores_gemma":[0.99976283,0.0000659426,0.000041796196,0.00001584176,0.00009204853,0.000021580883],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016490735,0.00019225958,0.00028081593,0.0004416563,0.0005799742,0.00041397975,0.00044574076,0.00039093243,0.019569198],"category_scores_gemma":[0.0006885142,0.00019767992,0.00010935935,0.00061821943,0.0002314634,0.00034756394,0.00018831741,0.00055372523,0.0028998305],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.002987448,0.0003183174,0.0073829917,0.0014758838,0.00010265593,0.00076102297,0.00097358413,0.0035661068,0.7421859,0.022472693,0.14366536,0.07410815],"study_design_scores_gemma":[0.00028383554,0.0010412441,0.049276706,0.00025851172,0.000054416934,0.00082087197,0.0012449481,0.028102685,0.78531873,0.0039486494,0.12952895,0.000120563906],"about_ca_topic_score_codex":0.0063828207,"about_ca_topic_score_gemma":0.007823692,"teacher_disagreement_score":0.019569198,"about_ca_system_score_codex":0.0004352097,"about_ca_system_score_gemma":0.00029561194,"threshold_uncertainty_score":0.06546545},"labels":[],"label_agreement":null},{"id":"W1604591345","doi":"10.1103/physrevb.68.155326","title":"Current plateaus of nonadiabatic charge pump:  Multiphoton assisted processes","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Current (fluid); Physics; Charge (physics); Quantum; Amplitude; Parametric statistics; Plateau (mathematics); Atomic physics; Optical pumping; Quantum electrodynamics; Chemistry; Quantum mechanics; Laser; Thermodynamics","score_opus":0.01512835126094144,"score_gpt":0.2893346811179265,"score_spread":0.27420632985698506,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1604591345","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.86738044,0.001539402,0.10333349,0.0006330784,0.000073180745,0.00010574208,0.00010523485,0.00061064534,0.026218796],"genre_scores_gemma":[0.9934214,0.0002800151,0.004654513,0.000027172562,0.000026007958,0.000030299685,0.000034258457,0.00002549546,0.0015007425],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999045,0.000012955918,0.000003914582,0.000014687307,0.000044307013,0.000019510311],"domain_scores_gemma":[0.9995409,0.0002299381,0.000058794158,0.0000538817,0.00008185664,0.00003473513],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003485584,0.00026761726,0.00034601733,0.0005803854,0.00045582117,0.00078007823,0.000982723,0.0005134759,0.002012511],"category_scores_gemma":[0.0015475154,0.00018997863,0.00039342028,0.0003626575,0.001031742,0.0013885351,0.00050695136,0.00079608033,0.00024784083],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028081957,0.00024719586,0.0019283283,0.0004339808,0.000036503105,0.0015282333,0.0011597079,0.038339168,0.23206472,0.7038293,0.0010555595,0.019096537],"study_design_scores_gemma":[0.000049905066,0.00025281915,0.0026609818,0.00003481258,0.000031471787,0.0009700472,0.00013201986,0.70618397,0.06491882,0.22204143,0.002677283,0.00004648059],"about_ca_topic_score_codex":0.00025692486,"about_ca_topic_score_gemma":0.00017823816,"teacher_disagreement_score":0.002012511,"about_ca_system_score_codex":0.0005588902,"about_ca_system_score_gemma":0.0003118532,"threshold_uncertainty_score":0.006732583},"labels":[],"label_agreement":null},{"id":"W1643918702","doi":"10.1103/physrevb.61.1267","title":"Magnetic order and local spin correlations in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>a</mml:mi><mml:mo>−</mml:mo><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mn</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mo>)</mml:mo></mml:mrow><mml:mrow><mml:mn>78</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sn</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Si</mml:mi></mml:mrow><mml:mrow><mml:mn>6</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">B</mml:mi></mml:mrow><mml:mrow><mml:mn>14</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Condensed matter physics; Antiferromagnetism; Spin glass; Order (exchange); Physics; Hyperfine structure; Magnetization; Spin (aerodynamics); Ferromagnetism; Mössbauer spectroscopy; Materials science; Magnetic field; Atomic physics; Quantum mechanics","score_opus":0.012394224393929502,"score_gpt":0.23936599166613437,"score_spread":0.22697176727220486,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1643918702","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.11740411,0.0022695416,0.17778905,0.0060996483,0.0020715161,0.00020759429,0.034681328,0.036278866,0.62319833],"genre_scores_gemma":[0.46630588,0.0019425063,0.08534398,0.0015735142,0.00038504583,0.00024432977,0.037739024,0.01655351,0.3899122],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99970406,0.00004824893,0.000017861556,0.00006194488,0.000119207994,0.000048645856],"domain_scores_gemma":[0.9995042,0.00014378603,0.000053356314,0.00012772079,0.00011503979,0.00005582135],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040202853,0.00046092455,0.000448549,0.0013931725,0.0010105559,0.0021062836,0.00075709994,0.0007053239,0.19163421],"category_scores_gemma":[0.0016729797,0.00038909685,0.00034542556,0.0013904347,0.0005567993,0.002335147,0.000772843,0.0009928349,0.034663025],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007348847,0.00021302681,0.003121957,0.00067040976,0.00005731549,0.00059414445,0.00088155974,0.0060081673,0.041553207,0.29346567,0.5255665,0.1271331],"study_design_scores_gemma":[0.00024440218,0.00023105805,0.016131848,0.00023614267,0.00008022134,0.0007344803,0.00096374727,0.059985556,0.08809863,0.18766987,0.64537543,0.00024866598],"about_ca_topic_score_codex":0.0072584716,"about_ca_topic_score_gemma":0.015398728,"teacher_disagreement_score":0.19163421,"about_ca_system_score_codex":0.0009866506,"about_ca_system_score_gemma":0.0006946546,"threshold_uncertainty_score":0.64108026},"labels":[],"label_agreement":null},{"id":"W1647251720","doi":"10.1103/physrevb.66.014109","title":"F center in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">BaF</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>:</mml:mo></mml:math>Diffuse excited state","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Inorganic Fluorides and Related Compounds","field":"Chemistry","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"Natural Sciences and Engineering Research Council of Canada; Tongji University; Michigan Technological University","keywords":"Excited state; Polaron; Physics; Excitation; Atomic physics; Ground state; Electron; Cluster (spacecraft); Center (category theory); Chemistry; Quantum mechanics","score_opus":0.014536612579621482,"score_gpt":0.23930144858505886,"score_spread":0.22476483600543737,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1647251720","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.016319634,0.00087395526,0.21123928,0.0022084874,0.001386149,0.00039572438,0.13484372,0.160649,0.47208402],"genre_scores_gemma":[0.086000435,0.0012150524,0.119626075,0.0012342697,0.00024711704,0.0007512142,0.16897066,0.07624931,0.5457058],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99980694,0.00001210555,0.000008632655,0.000045727626,0.00008719937,0.00003944747],"domain_scores_gemma":[0.9997596,0.000063647014,0.000018668232,0.000060003957,0.00007405897,0.00002398306],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0003001155,0.0012358581,0.0007558276,0.0014054974,0.0012379556,0.002194001,0.0025383425,0.002017676,0.50497353],"category_scores_gemma":[0.00096163235,0.000705915,0.0008070936,0.0010749743,0.000334876,0.002936797,0.0010554524,0.001296515,0.2280272],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003190354,0.00007909496,0.00053587713,0.0003753437,0.00002321459,0.0001648531,0.00011893643,0.0014902138,0.011398928,0.022481844,0.8779917,0.08502102],"study_design_scores_gemma":[0.00011257078,0.00003252704,0.00092485285,0.000048993857,0.000012026493,0.00024867186,0.000048536705,0.006369078,0.032234095,0.004891657,0.95502347,0.000053506596],"about_ca_topic_score_codex":0.009740481,"about_ca_topic_score_gemma":0.011302089,"teacher_disagreement_score":0.50497353,"about_ca_system_score_codex":0.0017479497,"about_ca_system_score_gemma":0.001047658,"threshold_uncertainty_score":0.70609516},"labels":[],"label_agreement":null},{"id":"W1648361234","doi":"10.1103/physrevb.67.054502","title":"Phase-slip-like resistivity in underdoped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Electrical resistivity and conductivity; Condensed matter physics; Physics; Superconductivity; Phase (matter); Quantum mechanics","score_opus":0.02018600230543229,"score_gpt":0.2582207397082797,"score_spread":0.2380347374028474,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1648361234","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9714723,0.0014782846,0.0011349967,0.0013237932,0.00034976585,0.000018883455,0.0036984337,0.00039664516,0.020126922],"genre_scores_gemma":[0.98860514,0.0006156554,0.000610119,0.0001099315,0.00003106248,0.000025691306,0.0020708903,0.0001222549,0.0078092483],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9997478,0.000028711236,0.000011754717,0.00004997525,0.000085327534,0.000076420176],"domain_scores_gemma":[0.9996315,0.00009054477,0.00008190326,0.00003578184,0.00011617024,0.000044101067],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019550648,0.0003468025,0.00044966122,0.00046290728,0.0006334411,0.0012738009,0.0005902022,0.000740926,0.009932108],"category_scores_gemma":[0.0009992488,0.00044218224,0.00012469271,0.000691556,0.00058555417,0.00062481733,0.00023156409,0.0010810199,0.0013200829],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0021424012,0.00018643207,0.003712807,0.0009439952,0.00013431451,0.0012224673,0.0011205528,0.0028053268,0.92613995,0.011243695,0.038508613,0.011839483],"study_design_scores_gemma":[0.00015427466,0.0005006547,0.026449727,0.00019261926,0.00006847444,0.00040823803,0.0017359096,0.019564888,0.92420816,0.0026999013,0.023910588,0.000106577965],"about_ca_topic_score_codex":0.006694148,"about_ca_topic_score_gemma":0.008397021,"teacher_disagreement_score":0.009932108,"about_ca_system_score_codex":0.00096144516,"about_ca_system_score_gemma":0.00051483954,"threshold_uncertainty_score":0.033226192},"labels":[],"label_agreement":null},{"id":"W1648966900","doi":"10.1103/physrevb.67.054509","title":"Spin-glass behavior, spin fluctuations, and superconductivity in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">Y</mml:mi><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ru</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>u</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mi>u</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>6</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"TRIUMF","keywords":"Muon spin spectroscopy; Antiferromagnetism; Physics; Superconductivity; Condensed matter physics; Muon; Order (exchange); Spin glass; Spin (aerodynamics); Crystallography; Particle physics; Chemistry","score_opus":0.01843119871547244,"score_gpt":0.25364488786066947,"score_spread":0.23521368914519702,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1648966900","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.1942159,0.006201834,0.03827588,0.011105667,0.0010728472,0.00013576791,0.0128833465,0.017347941,0.71876085],"genre_scores_gemma":[0.48814127,0.0035721788,0.014234204,0.0008637949,0.00021814635,0.000094749186,0.0094206305,0.0045134057,0.47894162],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99987614,0.000018729223,0.000009273813,0.000023304248,0.000051226805,0.000021240889],"domain_scores_gemma":[0.9998628,0.00005511091,0.000015106959,0.000026639247,0.00002356661,0.000016660659],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000236046,0.00026967347,0.00019357073,0.0010384074,0.00063699693,0.0022133538,0.00039781164,0.0003728454,0.11043949],"category_scores_gemma":[0.0006295521,0.00027642658,0.00023882093,0.0010248731,0.00055137026,0.0016198038,0.00033523442,0.00052051304,0.016385447],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005349557,0.0001907368,0.0045908187,0.00041288295,0.000037533755,0.00076119206,0.0012367503,0.0023689768,0.04359873,0.35726458,0.4364873,0.15251565],"study_design_scores_gemma":[0.00015129548,0.00017313124,0.031971704,0.00030786812,0.00005203565,0.000775234,0.0011320668,0.042634774,0.08684947,0.19774087,0.6380902,0.00012135758],"about_ca_topic_score_codex":0.008669172,"about_ca_topic_score_gemma":0.013038095,"teacher_disagreement_score":0.11043949,"about_ca_system_score_codex":0.0009642371,"about_ca_system_score_gemma":0.00034756426,"threshold_uncertainty_score":0.3694569},"labels":[],"label_agreement":null},{"id":"W1651382219","doi":"10.1103/physrevb.64.214412","title":"Oxygen isotope effect in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>0.8</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ca</mml:mi></mml:mrow><mml:mrow><mml:mn>0.2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MnO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo><mml:mi>δ</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>and its dependence on oxygen stoichiometry","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Isotopes of oxygen; Oxygen; Exponent; Manganite; Physics; Materials science; Analytical Chemistry (journal); Crystallography; Stoichiometry; Condensed matter physics; Nuclear magnetic resonance; Ferromagnetism; Physical chemistry; Chemistry; Nuclear physics","score_opus":0.014377262293707125,"score_gpt":0.24347841263316097,"score_spread":0.22910115033945386,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1651382219","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.13436952,0.0069948453,0.102064,0.0074300384,0.006478225,0.0005702137,0.20443171,0.03662796,0.5010336],"genre_scores_gemma":[0.26151282,0.004592585,0.06464626,0.0034790917,0.0002781965,0.00079007476,0.16313206,0.030434776,0.47113413],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9994392,0.00003699106,0.000028260025,0.00016332993,0.0002489278,0.000083336956],"domain_scores_gemma":[0.9993832,0.00017975038,0.00005484121,0.00011457993,0.00020995637,0.00005775849],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006956168,0.0010049796,0.0007560527,0.0014538136,0.0015830209,0.002372764,0.0019918848,0.0016604854,0.16876186],"category_scores_gemma":[0.0018011437,0.00082437095,0.0008975801,0.0016959049,0.0004480298,0.0019563558,0.00096300914,0.001964643,0.052525874],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0024240003,0.00032075183,0.0059971754,0.0015913516,0.00018773398,0.00071644975,0.00058480946,0.0017808632,0.48607948,0.016381977,0.40095812,0.08297734],"study_design_scores_gemma":[0.00016899161,0.00017300571,0.010418196,0.00013320205,0.00012054387,0.00036650465,0.00022089417,0.0032114757,0.4147987,0.0028942479,0.56736004,0.00013412212],"about_ca_topic_score_codex":0.018705845,"about_ca_topic_score_gemma":0.022767896,"teacher_disagreement_score":0.16876186,"about_ca_system_score_codex":0.0020856834,"about_ca_system_score_gemma":0.000946907,"threshold_uncertainty_score":0.5645647},"labels":[],"label_agreement":null},{"id":"W1652628534","doi":"10.1103/physrevb.66.064531","title":"Neutron elastic and inelastic scattering investigations of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">U</mml:mi></mml:mrow><mml:mrow><mml:mn>0.965</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Th</mml:mi></mml:mrow><mml:mrow><mml:mn>0.035</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Be</mml:mi></mml:mrow><mml:mrow><mml:mn>13</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rare-earth and actinide compounds","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Inelastic neutron scattering; Physics; Antiferromagnetism; Scattering; Neutron; Neutron scattering; Order (exchange); Superconductivity; Condensed matter physics; Crystallography; Atomic physics; Nuclear physics; Optics; Chemistry","score_opus":0.018881518868535976,"score_gpt":0.24510654504732668,"score_spread":0.2262250261787907,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1652628534","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.79321873,0.0029726583,0.008211418,0.0011754143,0.0003831188,0.00007348165,0.016130697,0.0007417895,0.1770926],"genre_scores_gemma":[0.86296254,0.0019407241,0.0050107264,0.00045813905,0.00003489338,0.00006295578,0.020990187,0.0010559193,0.10748394],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99939084,0.000042917185,0.000024125427,0.00015299348,0.00021775927,0.00017124262],"domain_scores_gemma":[0.9994092,0.000101671496,0.000058350404,0.00006139378,0.00028614755,0.00008324558],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005800682,0.0006717527,0.00052111223,0.0012992703,0.0020980302,0.001106876,0.00088351587,0.0011301484,0.02686293],"category_scores_gemma":[0.0010509884,0.00051274564,0.00050444313,0.0019041852,0.00055230275,0.00078772195,0.00063477247,0.0014390443,0.005709758],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0027895118,0.0002890638,0.009188904,0.00054749154,0.00013563182,0.0017742008,0.0015947665,0.006796172,0.8900529,0.01022236,0.05345703,0.023152031],"study_design_scores_gemma":[0.000064686275,0.0004372103,0.05506312,0.00012873938,0.000087175074,0.00069321785,0.0019091982,0.011607958,0.8559258,0.0015508363,0.072382145,0.00015000218],"about_ca_topic_score_codex":0.024006298,"about_ca_topic_score_gemma":0.035655826,"teacher_disagreement_score":0.02686293,"about_ca_system_score_codex":0.0015461043,"about_ca_system_score_gemma":0.00074203114,"threshold_uncertainty_score":0.089865446},"labels":[],"label_agreement":null},{"id":"W1663528541","doi":"10.1103/physrevb.63.121102","title":"Charge ordering and optical transitions of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">LiV</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">NaV</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Physics; Charge (physics); Optical spectra; Energy (signal processing); Spectral line; Crystallography; Chemistry; Particle physics; Quantum mechanics","score_opus":0.017223135853392538,"score_gpt":0.24647751257317688,"score_spread":0.22925437671978433,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1663528541","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.24104376,0.0021385006,0.048979774,0.007338757,0.004263507,0.00019035595,0.008951566,0.0063801617,0.6807136],"genre_scores_gemma":[0.68387157,0.002078994,0.035126906,0.002907998,0.0002456174,0.00032853748,0.010002866,0.0047599804,0.26067746],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996966,0.000033055014,0.000008955509,0.00006201635,0.000105100924,0.0000943452],"domain_scores_gemma":[0.99962103,0.00009470774,0.00003080419,0.000077075536,0.00011894872,0.00005733774],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037144226,0.0005829842,0.00032424042,0.0007953429,0.0013949156,0.0014570506,0.0010654122,0.0008064325,0.1547755],"category_scores_gemma":[0.0010703055,0.00032967495,0.00033201373,0.0010957401,0.0005451695,0.0014952758,0.00065702025,0.0022626724,0.021794535],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.001403799,0.00040004437,0.0019109554,0.0007848097,0.000041706753,0.0008490373,0.00088151265,0.0021221146,0.3963117,0.1105304,0.3761229,0.10864095],"study_design_scores_gemma":[0.00021084948,0.000520446,0.0063090525,0.000116393734,0.000042576135,0.00046186877,0.0008603073,0.015529311,0.510342,0.01906542,0.44633967,0.00020204231],"about_ca_topic_score_codex":0.0044013415,"about_ca_topic_score_gemma":0.0075600455,"teacher_disagreement_score":0.1547755,"about_ca_system_score_codex":0.0019522039,"about_ca_system_score_gemma":0.00081108604,"threshold_uncertainty_score":0.51777565},"labels":[],"label_agreement":null},{"id":"W1756780073","doi":"10.1103/physrevb.66.094512","title":"Velocity anisotropy and the antiferromagnetic instability in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">QED</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>theory of underdoped cuprates","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Physics; Quasiparticle; Antiferromagnetism; Superconductivity; Anisotropy; Condensed matter physics; Perturbation theory (quantum mechanics); Quantum mechanics","score_opus":0.020377175761202015,"score_gpt":0.24862434593733312,"score_spread":0.2282471701761311,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1756780073","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9809769,0.0004284914,0.006082557,0.0006988432,0.00006305841,0.000012125563,0.000015699921,0.000047853144,0.011674489],"genre_scores_gemma":[0.9962214,0.00016466598,0.0011781341,0.00004851154,0.000048472877,0.000008903465,0.0000102873855,0.000014684652,0.002304875],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998759,0.000042689808,0.0000044535673,0.000014213233,0.00002511515,0.000037658174],"domain_scores_gemma":[0.99979705,0.00005322698,0.000056780886,0.000016964957,0.00002690165,0.000049118767],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00031168555,0.00041053005,0.00028647474,0.00067221024,0.0008565468,0.0014221456,0.000697315,0.0006244768,0.001319063],"category_scores_gemma":[0.00080181804,0.0002540084,0.0002926348,0.00033916935,0.0018456769,0.0013081677,0.0007570649,0.0005946746,0.00014165454],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001774954,0.00010331999,0.0021708752,0.000059821657,0.000027762751,0.0004511203,0.00028224775,0.036986973,0.015609381,0.940603,0.0009874463,0.002540661],"study_design_scores_gemma":[0.00009570745,0.00011192014,0.0026618612,0.000020907371,0.000024857733,0.00017984159,0.00015666522,0.7281485,0.004069798,0.26354465,0.0009337559,0.0000514479],"about_ca_topic_score_codex":0.0050821532,"about_ca_topic_score_gemma":0.004693487,"teacher_disagreement_score":0.0050821532,"about_ca_system_score_codex":0.00093008205,"about_ca_system_score_gemma":0.0007867455,"threshold_uncertainty_score":0.010105133},"labels":[],"label_agreement":null},{"id":"W1758303100","doi":"10.1103/physrevb.67.174512","title":"Quantum critical point in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">QED</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>theory of underdoped high-temperature superconductors","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Physics; Renormalization group; Critical exponent; Quantum critical point; Fermion; Critical phenomena; Quasiparticle; Quantum mechanics; Critical point (mathematics); Superconductivity; Phase transition; Condensed matter physics; Quantum phase transition; Mathematical physics","score_opus":0.018441661431897998,"score_gpt":0.25758166087542095,"score_spread":0.23913999944352296,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1758303100","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96740836,0.000430588,0.015083476,0.0008117835,0.00008760274,0.000028427861,0.00003758864,0.00017002101,0.015942002],"genre_scores_gemma":[0.99491197,0.00016683579,0.003111735,0.00008033471,0.00004711199,0.000026595668,0.000028408846,0.00004167511,0.0015853639],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998857,0.000031918935,0.000004076707,0.000019376159,0.000025449717,0.00003341868],"domain_scores_gemma":[0.99971277,0.000073220515,0.00006172033,0.00002729905,0.00004841768,0.0000765517],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00033350763,0.00030675065,0.00043079586,0.0009384347,0.0010837091,0.001095692,0.0005984822,0.00074186147,0.0024068512],"category_scores_gemma":[0.0008910749,0.00024591637,0.0004660344,0.0003090874,0.0018294253,0.0012023528,0.0007567854,0.00077431294,0.00021053871],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016566731,0.00013158024,0.0024845062,0.00017184555,0.000056598,0.0007198948,0.0004343403,0.022394432,0.03425616,0.9328214,0.0024244569,0.00393916],"study_design_scores_gemma":[0.00017237298,0.00022374238,0.0041663554,0.000072281524,0.000072095165,0.00028120485,0.0002830769,0.3977641,0.017424444,0.5773839,0.0020904178,0.00006597389],"about_ca_topic_score_codex":0.0015826186,"about_ca_topic_score_gemma":0.0014626224,"teacher_disagreement_score":0.0024068512,"about_ca_system_score_codex":0.0007976472,"about_ca_system_score_gemma":0.00067918206,"threshold_uncertainty_score":0.008051753},"labels":[],"label_agreement":null},{"id":"W1867125714","doi":"10.1103/physrevb.66.014110","title":"Equation of state and the Hugoniot of laser shock-compressed deuterium: Demonstration of a basis-function-free method for quantum calculations","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada","funders":"","keywords":"Equation of state; Shock (circulatory); Compressibility; Path integral Monte Carlo; Physics; Deuterium; Electron; Quantum; Shock wave; Path integral formulation; Thermodynamics; Quantum mechanics","score_opus":0.0244815516455097,"score_gpt":0.27320783466046195,"score_spread":0.24872628301495225,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1867125714","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.037153356,0.0005932589,0.9324889,0.0007754901,0.00019390801,0.00014188034,0.00028838392,0.0005975129,0.027767243],"genre_scores_gemma":[0.3982301,0.00084018067,0.58231515,0.00042760585,0.00017653822,0.0006375728,0.0003642504,0.0011412428,0.01586745],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9996013,0.00019239722,0.00001328763,0.000015794432,0.00013825209,0.00003898735],"domain_scores_gemma":[0.9993924,0.00035523693,0.000023831915,0.000102531034,0.000094038594,0.000031955504],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0013784637,0.00064038346,0.0007968028,0.0007563918,0.0009494957,0.001262746,0.0017909338,0.0013801036,0.004615179],"category_scores_gemma":[0.0019443961,0.00036271746,0.0007214208,0.000804012,0.0012935201,0.0010689751,0.0011285482,0.0018460646,0.0013939244],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000078831225,0.00012712617,0.00047081275,0.00017236016,0.000056033514,0.00021654111,0.00022650376,0.21561234,0.0039508063,0.7416988,0.003402211,0.033987604],"study_design_scores_gemma":[0.000024895007,0.000012055788,0.00011393685,0.000019053236,0.000005509392,0.000020405592,0.000019225194,0.8997621,0.0005873763,0.096398816,0.003020188,0.000016465743],"about_ca_topic_score_codex":0.0049065696,"about_ca_topic_score_gemma":0.0045784083,"teacher_disagreement_score":0.0049065696,"about_ca_system_score_codex":0.0009909968,"about_ca_system_score_gemma":0.001312772,"threshold_uncertainty_score":0.0154393315},"labels":[],"label_agreement":null},{"id":"W1882390993","doi":"10.1103/physrevb.67.104104","title":"Development of ferroelectric order in relaxor<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mn>1</mml:mn><mml:mn/><mml:mi>−</mml:mi><mml:mi>x</mml:mi><mml:mo>)</mml:mo><mml:mi mathvariant=\"normal\">Pb</mml:mi><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>–</mml:mo><mml:mi>x</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbTiO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi/><mml:mo>(</mml:mo><mml:mn>0</mml:mn><mml:mn/><mml:mo>&lt;~</mml:mo><mml:mi>x</mml:mi><mml:mo>&lt;~</mml:mo><mml:mn>0</mml:mn><mml:mo>.</mml:mo><mml:mn>1</mml:mn><mml:mn>5</mml:mn><mml:mo>)</mml:mo></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":172,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Order (exchange); Ferroelectricity; Algorithm; Computer science; Physics; Quantum mechanics","score_opus":0.01764175326486445,"score_gpt":0.24713334323807393,"score_spread":0.22949158997320948,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1882390993","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.06523477,0.0012349286,0.72995174,0.002191472,0.0012579728,0.0007229044,0.004310571,0.035298407,0.15979728],"genre_scores_gemma":[0.17871189,0.0015783722,0.65968096,0.0006434852,0.00016291639,0.0005610667,0.007049569,0.010710077,0.14090168],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9994979,0.00008406347,0.000030212064,0.000088858345,0.00023055267,0.00006836143],"domain_scores_gemma":[0.9994,0.00011711701,0.000033388817,0.00013719553,0.0002535739,0.000058722668],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010851837,0.00070647156,0.00053176,0.00048005488,0.00079759327,0.001332826,0.0013614077,0.0006641982,0.03270507],"category_scores_gemma":[0.001171081,0.0007835433,0.0007059497,0.00031563576,0.000384191,0.001386547,0.00096562563,0.0017802743,0.015539131],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00054240273,0.0003347659,0.0019159974,0.0014356571,0.00012297509,0.0009279059,0.00096034,0.013518532,0.47129655,0.18450987,0.10662989,0.21780519],"study_design_scores_gemma":[0.00017433052,0.00027209832,0.00066710456,0.00014425944,0.00004964114,0.00048029696,0.00014804737,0.0664707,0.5003364,0.011324961,0.4198185,0.000113694194],"about_ca_topic_score_codex":0.0030051945,"about_ca_topic_score_gemma":0.006376575,"teacher_disagreement_score":0.03270507,"about_ca_system_score_codex":0.0007421934,"about_ca_system_score_gemma":0.0011673216,"threshold_uncertainty_score":0.10940933},"labels":[],"label_agreement":null},{"id":"W1903245185","doi":"10.1103/physrevb.68.184515","title":"Transformation of in-plane<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>ρ</mml:mi><mml:mn/><mml:mo>(</mml:mo><mml:mi>T</mml:mi><mml:mo>)</mml:mo><mml:mn/></mml:math>in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn><mml:mi>−</mml:mi><mml:mi>δ</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>at fixed oxygen content","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Electrical resistivity and conductivity; Annealing (glass); Flattening; Residual resistivity; Materials science; Condensed matter physics; Crystallography; Argon; Analytical Chemistry (journal); Superconductivity; Mineralogy; Physics; Chemistry; Atomic physics; Metallurgy","score_opus":0.019445100099499645,"score_gpt":0.24351935922146326,"score_spread":0.2240742591219636,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1903245185","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.013932133,0.00037659318,0.50122726,0.0014111925,0.0033073614,0.00035067246,0.0120670935,0.03543625,0.43189144],"genre_scores_gemma":[0.19736272,0.0012583275,0.2863205,0.0014153586,0.00048290362,0.000629586,0.031903457,0.035315447,0.4453117],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9992902,0.00006929474,0.00003632827,0.00013811878,0.00036968532,0.00009634617],"domain_scores_gemma":[0.999514,0.000040948045,0.000023966948,0.00015443905,0.0002353031,0.00003136232],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004691207,0.0016669829,0.00073377875,0.0014421523,0.0011169529,0.003471456,0.0013065416,0.0009661075,0.1680308],"category_scores_gemma":[0.0012279213,0.00064603117,0.0012511136,0.0011666212,0.0007202173,0.0024261293,0.0019563194,0.0017110255,0.08244552],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005156768,0.00019196195,0.001461126,0.0005817628,0.00007282525,0.0007754049,0.0010830084,0.009110895,0.04970256,0.16506869,0.56419986,0.20723625],"study_design_scores_gemma":[0.00004860872,0.00006209908,0.0006958891,0.00005269939,0.000023151682,0.0002709592,0.0004061428,0.012503662,0.030983523,0.01999358,0.93491554,0.00004422296],"about_ca_topic_score_codex":0.0063577266,"about_ca_topic_score_gemma":0.008208626,"teacher_disagreement_score":0.1680308,"about_ca_system_score_codex":0.0011484682,"about_ca_system_score_gemma":0.0010884709,"threshold_uncertainty_score":0.562119},"labels":[],"label_agreement":null},{"id":"W1963979778","doi":"10.1103/physrevb.67.121201","title":"Weakly bound muonium state in GaP","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Muon and positron interactions and applications","field":"Engineering","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; Canadian Institute for Advanced Research","funders":"","keywords":"Muonium; Muon; Muon spin spectroscopy; Ground state; Electric field; Atomic physics; Physics; Electron; Condensed matter physics; Relaxation (psychology); Bound state; Spin (aerodynamics); Band gap; Nuclear physics; Particle physics","score_opus":0.012842383899721109,"score_gpt":0.2979502042202292,"score_spread":0.28510782032050813,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1963979778","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9974566,0.00017241275,0.0007309238,0.000021171794,0.0000056782833,0.0000027154974,0.000014353779,0.000013294206,0.0015828107],"genre_scores_gemma":[0.9988061,0.00006448099,0.00028846855,0.000007627974,0.0000010510719,0.0000027725457,0.00002424357,0.000004906538,0.00080042594],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99995327,0.0000075696635,0.0000016653546,0.000011850464,0.000011471141,0.000014210321],"domain_scores_gemma":[0.9999292,0.000026287737,0.0000126248115,0.000007795802,0.000011031211,0.000013024287],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009655665,0.00014282326,0.00022786095,0.00015629204,0.00037324673,0.0006150772,0.00028502184,0.0002864062,0.0015812282],"category_scores_gemma":[0.00021714302,0.00012472506,0.00012411145,0.00012798073,0.00031237688,0.0003205231,0.00039880193,0.00020557221,0.00019799534],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00048864225,0.000039356048,0.0022132122,0.00016850828,0.000023099497,0.0006539221,0.0004556604,0.00088361686,0.98186696,0.010008844,0.00011203564,0.003086109],"study_design_scores_gemma":[0.000046998208,0.0008087927,0.004667912,0.000023388848,0.00004838897,0.00053818495,0.0003881248,0.0071775373,0.9809208,0.003206218,0.0021597962,0.0000139082995],"about_ca_topic_score_codex":0.0003427274,"about_ca_topic_score_gemma":0.0003429281,"teacher_disagreement_score":0.0015812282,"about_ca_system_score_codex":0.00023170475,"about_ca_system_score_gemma":0.00012704109,"threshold_uncertainty_score":0.0052897334},"labels":[],"label_agreement":null},{"id":"W1964025120","doi":"10.1103/physrevb.66.045101","title":"Power laws in a two-leg ladder of interacting spinless fermions","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Fermion; Power (physics); Physics; Law; Mathematical physics; Theoretical physics; Quantum mechanics; Political science","score_opus":0.0212424629281038,"score_gpt":0.32767737371035605,"score_spread":0.30643491078225227,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1964025120","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97124344,0.0001739719,0.025423028,0.00015265861,0.000012336084,0.000018256413,0.000025101444,0.00009928894,0.002851972],"genre_scores_gemma":[0.99362683,0.00007764467,0.005253062,0.000027807757,0.000011436773,0.000021781625,0.00002812581,0.000025334373,0.0009278836],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997929,0.000068620764,0.000007382122,0.000023160095,0.00005828236,0.00004970936],"domain_scores_gemma":[0.99821424,0.001005239,0.00031130906,0.00013823717,0.00014678086,0.00018424373],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007359876,0.00031990613,0.0004668367,0.001262212,0.0005310334,0.0010299541,0.0009073832,0.0006272431,0.0013307908],"category_scores_gemma":[0.003363812,0.00027079292,0.00039006767,0.0006288095,0.0019698283,0.0014443019,0.00049054704,0.0005555554,0.00013326388],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00040198094,0.0004139854,0.008553765,0.00018550725,0.00011375825,0.0022115721,0.0013873111,0.20177984,0.03410124,0.7402625,0.0011869294,0.009401647],"study_design_scores_gemma":[0.000049129667,0.00007540184,0.0021179938,0.000016436803,0.000014062321,0.00016606125,0.000083285784,0.85492927,0.0021332887,0.1399848,0.000400582,0.000029601262],"about_ca_topic_score_codex":0.0019810088,"about_ca_topic_score_gemma":0.0013731682,"teacher_disagreement_score":0.0019810088,"about_ca_system_score_codex":0.0009556081,"about_ca_system_score_gemma":0.0003811442,"threshold_uncertainty_score":0.0069334507},"labels":[],"label_agreement":null},{"id":"W1964426949","doi":"10.1103/physrevb.64.115321","title":"Carbon nanotube parametric electron pump: A molecular device","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; Hong Kong Government; Office of Naval Research; University of Hong Kong; National Aeronautics and Space Administration","keywords":"Carbon nanotube; Materials science; Nanotube; Voltage; Carbon nanotube quantum dot; Electron; Amplitude; Parametric statistics; Phase (matter); Optoelectronics; Metal; Nanotechnology; Optics; Physics","score_opus":0.011486267465949744,"score_gpt":0.3026603801989125,"score_spread":0.2911741127329628,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1964426949","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98414487,0.0010208079,0.009848586,0.00049626624,0.00011227672,0.00004114613,0.00012601563,0.00012998268,0.0040800045],"genre_scores_gemma":[0.99371874,0.0002728808,0.00442532,0.00003613978,0.000014251985,0.000017561617,0.000027913507,0.000007220543,0.0014799833],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999069,0.0000091480615,0.0000029356033,0.00001800978,0.00004753664,0.000015403919],"domain_scores_gemma":[0.9998976,0.000036712325,0.000015881882,0.000016058308,0.000022101454,0.000011723762],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012375822,0.00013082792,0.00015269304,0.00012273742,0.0002429334,0.0002944887,0.00023750686,0.0004400453,0.0011587429],"category_scores_gemma":[0.00028305422,0.000068109744,0.00009065609,0.00013548577,0.00027911246,0.00037486208,0.0001479225,0.000276415,0.00019458831],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013719326,0.000046048088,0.00040044438,0.00008922672,0.0000116788,0.00019064608,0.000047798487,0.0015220098,0.98219174,0.007698297,0.0002856788,0.007379248],"study_design_scores_gemma":[0.000031119,0.00038615274,0.0022100352,0.000014720701,0.000026583142,0.00037095172,0.000022696388,0.02397736,0.9638771,0.0011135223,0.00794896,0.000020812662],"about_ca_topic_score_codex":0.00015288653,"about_ca_topic_score_gemma":0.0002222455,"teacher_disagreement_score":0.0011587429,"about_ca_system_score_codex":0.00016306477,"about_ca_system_score_gemma":0.00009701951,"threshold_uncertainty_score":0.003876388},"labels":[],"label_agreement":null},{"id":"W1964677579","doi":"10.1103/physrevb.67.174522","title":"Vortons in the SO(5) model of high-temperature superconductivity","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Superconductivity; Vortex; Physics; Condensed matter physics; Antiferromagnetism; Cosmic string; Quasiparticle; Momentum (technical analysis); Symmetry (geometry); Field (mathematics); Core (optical fiber); Angular momentum; String (physics); Quantum mechanics; Mechanics","score_opus":0.017687961046010038,"score_gpt":0.27953472220886066,"score_spread":0.2618467611628506,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1964677579","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8720989,0.0037157026,0.03960953,0.0017801058,0.00045990507,0.00006644614,0.000110093264,0.00023289947,0.08192634],"genre_scores_gemma":[0.99115986,0.0007526662,0.0031996048,0.00012373106,0.00012498678,0.000041210526,0.000054057655,0.000014454105,0.0045294804],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.999899,0.000036124387,0.000003946497,0.000007975519,0.000029429593,0.000023509818],"domain_scores_gemma":[0.9998847,0.000021597227,0.000025912792,0.000016545213,0.000017963428,0.000033309418],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002639591,0.00024138532,0.00039171358,0.0006481138,0.0008174228,0.00092877325,0.00036584833,0.0007000497,0.0015689116],"category_scores_gemma":[0.0003359,0.0001307996,0.0004707735,0.00035995105,0.0014509943,0.0010569436,0.0004976684,0.00034706248,0.00019186475],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00003381702,0.000015996822,0.0003312468,0.000033134867,0.0000058663936,0.00018769997,0.00011393986,0.0073119104,0.0022290072,0.98778987,0.0006188393,0.0013287043],"study_design_scores_gemma":[0.000039614937,0.0000767228,0.00074294774,0.000018501129,0.00000876774,0.00025561586,0.00013575281,0.073044255,0.00045635298,0.9218704,0.0033341586,0.000016896021],"about_ca_topic_score_codex":0.0012774385,"about_ca_topic_score_gemma":0.0010792033,"teacher_disagreement_score":0.0015689116,"about_ca_system_score_codex":0.00043978594,"about_ca_system_score_gemma":0.00044775358,"threshold_uncertainty_score":0.0052485466},"labels":[],"label_agreement":null},{"id":"W1964965883","doi":"10.1103/physrevb.66.195110","title":"Distinguishing disorder-induced bands from allowed Raman bands in graphite","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Graphene research and applications","field":"Materials Science","cited_by":90,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Raman spectroscopy; G band; Raman scattering; Physics; Scattering; Graphite; Highly oriented pyrolytic graphite; Symmetry (geometry); Crystal (programming language); Condensed matter physics; Pyrolytic carbon; Atomic physics; Materials science; Optics; Chemistry","score_opus":0.026570486301797494,"score_gpt":0.3108697224511162,"score_spread":0.28429923614931873,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1964965883","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99325377,0.00030526746,0.0030140216,0.000035698253,0.000007186464,0.000006512925,0.00005004672,0.00003727025,0.0032902176],"genre_scores_gemma":[0.998422,0.00011184001,0.001271792,0.00001742773,0.0000018981151,0.00000503722,0.000038013386,0.0000036863778,0.00012832123],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999843,0.000025374766,0.000010124021,0.000035414843,0.000051345964,0.000034633744],"domain_scores_gemma":[0.99974495,0.00013871823,0.00005059854,0.000025237134,0.000022945474,0.000017381179],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015392933,0.00018317226,0.00010812727,0.0012544959,0.00027520012,0.0003752817,0.00024738378,0.0002849784,0.0006208411],"category_scores_gemma":[0.00049191783,0.00017173178,0.0001225698,0.00056035735,0.00049963983,0.00026738617,0.00048215504,0.00026172577,0.00009307002],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002949842,0.000040688083,0.011558448,0.00011793209,0.000011713107,0.00033854088,0.0003168276,0.0010094258,0.96414256,0.010217855,0.00009379342,0.011857163],"study_design_scores_gemma":[0.00005824514,0.00036590922,0.08463284,0.000059796705,0.00003576128,0.0015431895,0.00077682926,0.02742013,0.86680967,0.016088484,0.002137541,0.00007150718],"about_ca_topic_score_codex":0.00031797044,"about_ca_topic_score_gemma":0.0007755351,"teacher_disagreement_score":0.0012544959,"about_ca_system_score_codex":0.00018842303,"about_ca_system_score_gemma":0.00017027408,"threshold_uncertainty_score":0.0020769238},"labels":[],"label_agreement":null},{"id":"W1965019522","doi":"10.1103/physrevb.67.144403","title":"Low-temperature static and dynamic behavior of the easy-axis Heisenberg antiferromagnet on the Kagome lattice","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Condensed matter physics; Antiferromagnetism; Anisotropy; Physics; Heisenberg model; Exponent; Non-equilibrium thermodynamics; Critical exponent; Autocorrelation; Power law; Monte Carlo method; Lattice (music); Scaling; Magnetization; Quantum mechanics; Phase transition; Magnetic field; Mathematics","score_opus":0.0060565143507105195,"score_gpt":0.2603546186624662,"score_spread":0.25429810431175565,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1965019522","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9980204,0.00008965147,0.0008651498,0.000062585495,0.000008231689,0.00000487004,0.00004093356,0.000019425841,0.000888749],"genre_scores_gemma":[0.9987049,0.000062667976,0.0007684871,0.000008794307,0.0000068840463,0.000010276224,0.00007197387,0.000009579654,0.00035643598],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99989307,0.000035285102,0.000003442681,0.000014379622,0.000017820419,0.00003594246],"domain_scores_gemma":[0.99921477,0.00040608045,0.00012100786,0.00005827272,0.000084917556,0.00011489717],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00051340123,0.00037468932,0.0006044668,0.0006916902,0.0007500323,0.0007417964,0.00062240905,0.0006605661,0.0016342641],"category_scores_gemma":[0.001510771,0.00030547442,0.00038855843,0.00037909986,0.001248274,0.000923779,0.00031234798,0.0005863425,0.000114805436],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006482133,0.0005217708,0.016825765,0.0001977827,0.00015957074,0.00073316414,0.000297618,0.8976105,0.02717839,0.050101187,0.0013454143,0.0043806927],"study_design_scores_gemma":[0.000041540992,0.00009246151,0.002104888,0.0000072667185,0.000016146063,0.000036147587,0.00003596712,0.991905,0.0020574827,0.003484689,0.00020357242,0.000014818339],"about_ca_topic_score_codex":0.005218019,"about_ca_topic_score_gemma":0.0075958236,"teacher_disagreement_score":0.005218019,"about_ca_system_score_codex":0.0010474809,"about_ca_system_score_gemma":0.000553497,"threshold_uncertainty_score":0.010375321},"labels":[],"label_agreement":null},{"id":"W1965260310","doi":"10.1103/physrevb.67.054503","title":"Inversion of angle-resolved photoemission measurements in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>cuprates","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":38,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Physics; Dispersion relation; Energy (signal processing); Phonon; Condensed matter physics; Atomic physics; Quantum mechanics","score_opus":0.024916178306421424,"score_gpt":0.2582555202220677,"score_spread":0.2333393419156463,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1965260310","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99225545,0.00028717937,0.0023580987,0.000034341952,0.000020094587,0.000008934326,0.00027991223,0.000109638924,0.0046463264],"genre_scores_gemma":[0.99780196,0.00015637411,0.00090667524,0.00001249982,0.0000028982918,0.000007248111,0.0002156072,0.000030350893,0.000866406],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99985325,0.000011331651,0.0000066924677,0.000039008482,0.00005206736,0.000037622467],"domain_scores_gemma":[0.99969614,0.000064755965,0.00007715812,0.00004000044,0.000098800956,0.000023193925],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025193774,0.00030435435,0.0002195557,0.000688425,0.00032041373,0.0005761258,0.00051018083,0.0003003491,0.0031699694],"category_scores_gemma":[0.0004689568,0.00020508215,0.0002022029,0.00047302555,0.0004746896,0.0004346156,0.00028087458,0.000556399,0.0005105364],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016905293,0.00004044529,0.0021579596,0.00007512968,0.000013253351,0.00010280465,0.00018611399,0.00017430069,0.9925684,0.00080976373,0.00015874783,0.0035441369],"study_design_scores_gemma":[0.000009798827,0.000088094625,0.013635583,0.0000098659175,0.000018201246,0.00016918837,0.00018297412,0.0025356521,0.98167175,0.0002730188,0.0013931651,0.000012596542],"about_ca_topic_score_codex":0.0017526887,"about_ca_topic_score_gemma":0.0032306476,"teacher_disagreement_score":0.0031699694,"about_ca_system_score_codex":0.00033771596,"about_ca_system_score_gemma":0.00019278587,"threshold_uncertainty_score":0.01060468},"labels":[],"label_agreement":null},{"id":"W1965326024","doi":"10.1103/physrevb.65.041401","title":"<i>Ab initio</i><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>I</mml:mi><mml:mo>−</mml:mo><mml:mi>V</mml:mi></mml:math>characteristics of short<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mn>20</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>chains","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":38,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; U.S. Department of Energy","keywords":"Ab initio; Formalism (music); Physics; Molecule; Orientation (vector space); Ab initio quantum chemistry methods; Crystallography; Materials science; Atomic physics; Chemistry; Quantum mechanics; Geometry","score_opus":0.014861253962353113,"score_gpt":0.2436491301837307,"score_spread":0.22878787622137758,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1965326024","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7553511,0.0010486005,0.06469379,0.0013993952,0.00024059345,0.00014434264,0.008560529,0.0035833672,0.16497819],"genre_scores_gemma":[0.9563776,0.00067212497,0.023406897,0.00018452351,0.000041659205,0.00026096293,0.0060323956,0.002033507,0.010990356],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998739,0.000016596205,0.0000047755148,0.000009705133,0.00006161289,0.000033471326],"domain_scores_gemma":[0.99966514,0.00009136902,0.00003885902,0.00006425089,0.000118094125,0.000022359336],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028184484,0.00043006608,0.00048192873,0.0006887449,0.00088255043,0.0008651262,0.0012861773,0.0009029928,0.024747476],"category_scores_gemma":[0.00071195327,0.0003668243,0.0005198266,0.001092953,0.00034472137,0.0014266676,0.00031074588,0.0007549076,0.002505678],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00049334153,0.00028148622,0.006280813,0.0019684697,0.00018863879,0.00057549006,0.00071064214,0.60613775,0.0987724,0.17976965,0.07133754,0.033483654],"study_design_scores_gemma":[0.000098425284,0.00021817516,0.004127917,0.00006954376,0.000058690366,0.00009300918,0.00027557366,0.90338576,0.062670246,0.014139234,0.014784548,0.00007885814],"about_ca_topic_score_codex":0.009885697,"about_ca_topic_score_gemma":0.021264067,"teacher_disagreement_score":0.024747476,"about_ca_system_score_codex":0.0012491655,"about_ca_system_score_gemma":0.0007474668,"threshold_uncertainty_score":0.08278853},"labels":[],"label_agreement":null},{"id":"W1965653087","doi":"10.1103/physrevb.62.16962","title":"Column buckling of multiwalled carbon nanotubes with interlayer radial displacements","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":232,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Buckling; van der Waals force; Carbon nanotube; Materials science; Nanotube; RADIUS; Column (typography); Wavelength; Composite material; Mechanics; Molecular physics; Physics; Geometry; Connection (principal bundle)","score_opus":0.0075859954434669774,"score_gpt":0.27586216380968503,"score_spread":0.26827616836621804,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1965653087","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.52209264,0.0029616875,0.43026578,0.0010334254,0.00038347172,0.000101312646,0.00023100042,0.00030592954,0.042624664],"genre_scores_gemma":[0.96270996,0.0010943311,0.014570058,0.00014868879,0.00006577324,0.00010643063,0.000095166266,0.000061393825,0.021148201],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998783,0.000013434834,0.000004811715,0.000020410187,0.000046990845,0.00003615183],"domain_scores_gemma":[0.99988616,0.00002909018,0.000025556988,0.000015189005,0.00001763337,0.00002643523],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013029668,0.0005497374,0.00051936577,0.0003947246,0.00068829313,0.0006396091,0.000822118,0.0011332639,0.0012045021],"category_scores_gemma":[0.00025576903,0.0003046371,0.00057951227,0.00021309205,0.00069283973,0.00081691984,0.00052746205,0.00054746855,0.00030967468],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000044078362,0.00005441862,0.00059876725,0.00011788864,0.00002535774,0.0009073139,0.00009324219,0.88075274,0.06005429,0.051878843,0.0005416721,0.0049313763],"study_design_scores_gemma":[0.0000040714153,0.000027276159,0.00024145909,0.000007005618,0.0000043807945,0.00013010793,0.00001716402,0.9902113,0.002848155,0.0056199282,0.00087465736,0.00001453619],"about_ca_topic_score_codex":0.003548585,"about_ca_topic_score_gemma":0.0040803426,"teacher_disagreement_score":0.003548585,"about_ca_system_score_codex":0.00059067016,"about_ca_system_score_gemma":0.0004627641,"threshold_uncertainty_score":0.0070558786},"labels":[],"label_agreement":null},{"id":"W1966704942","doi":"10.1103/physrevb.64.134515","title":"Fermi-liquid theory for anisotropic superconductors","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Condensed matter physics; Fermi liquid theory; Quasiparticle; Physics; Superconductivity; Superfluidity; Fermi surface; Renormalization; Anisotropy; Fermi energy; Quantum oscillations; Fermi Gamma-ray Space Telescope; Penetration depth; Effective mass (spring–mass system); Fermi level; Quantum mechanics","score_opus":0.020567657778363543,"score_gpt":0.3102794408523484,"score_spread":0.2897117830739848,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1966704942","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.11468112,0.026040675,0.43782157,0.009297796,0.0015799047,0.0001643148,0.0006059082,0.0010189367,0.4087897],"genre_scores_gemma":[0.8360245,0.011994087,0.082817785,0.0014979168,0.0014770955,0.00038601065,0.00055000087,0.00026430987,0.0649883],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997279,0.00006111837,0.000015405129,0.000021080868,0.00013349275,0.000040976534],"domain_scores_gemma":[0.9998067,0.000045646226,0.000019810983,0.00003818653,0.000060080252,0.000029683253],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00044639368,0.00061843626,0.0008517636,0.0016070289,0.0012048694,0.0016440245,0.0009489662,0.0014838765,0.0029328216],"category_scores_gemma":[0.0006288122,0.00025036692,0.0007982529,0.00090973836,0.0016928852,0.0017070189,0.0008257818,0.0012423754,0.0008969859],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000002508179,0.0000050576623,0.000021435973,0.000012330417,0.0000022252323,0.000034289435,0.00003362089,0.0023249832,0.0003529969,0.9954335,0.00054256583,0.0012343642],"study_design_scores_gemma":[0.000008521226,0.000008000655,0.000072840645,0.000017665705,0.000004050264,0.000056727597,0.00001924233,0.03411389,0.0001900837,0.95890343,0.0065959794,0.000009578206],"about_ca_topic_score_codex":0.00351535,"about_ca_topic_score_gemma":0.003119218,"teacher_disagreement_score":0.00351535,"about_ca_system_score_codex":0.0012591664,"about_ca_system_score_gemma":0.0010430977,"threshold_uncertainty_score":0.009811223},"labels":[],"label_agreement":null},{"id":"W1966763726","doi":"10.1103/physrevb.67.212406","title":"Off-equilibrium study of the fluctuation-dissipation relation in the easy-axis Heisenberg antiferromagnet on the<i>kagomé</i>lattice","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Condensed matter physics; Autocorrelation; Physics; Antiferromagnetism; Spin glass; Heisenberg model; Dissipation; Monte Carlo method; Lattice (music); Statistical physics; Magnetic field; Symmetry breaking; Quantum mechanics; Mathematics; Statistics","score_opus":0.014305091712831364,"score_gpt":0.2807979565916516,"score_spread":0.26649286487882023,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1966763726","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9946732,0.00011849403,0.003268823,0.00020089497,0.000017006303,0.000015094405,0.00003767767,0.000039302788,0.001629707],"genre_scores_gemma":[0.9986261,0.00004796754,0.00081198395,0.000017133849,0.000008642803,0.000016287046,0.000042089752,0.000012985957,0.00041672992],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99976903,0.000074173186,0.000007533948,0.00002538637,0.00004312264,0.00008071304],"domain_scores_gemma":[0.99777514,0.0012877567,0.00029359228,0.00013110352,0.00016714097,0.00034529585],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00083479827,0.00051741226,0.0008636724,0.00077119883,0.0011488545,0.0011173493,0.0012349454,0.0009101128,0.0018145518],"category_scores_gemma":[0.0038938238,0.0005227906,0.00044115682,0.00032842078,0.0025111577,0.0015102898,0.0008897684,0.0011410123,0.00011962618],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013807755,0.00143156,0.0164507,0.00028406305,0.00023334098,0.0023448078,0.0008169437,0.64809877,0.044250418,0.27486792,0.0029874286,0.0068533137],"study_design_scores_gemma":[0.00005136037,0.00015149201,0.001100598,0.000008660618,0.00001211375,0.000033774017,0.00004323641,0.9852963,0.0015687194,0.011582476,0.0001320105,0.000019246094],"about_ca_topic_score_codex":0.0055222264,"about_ca_topic_score_gemma":0.00466109,"teacher_disagreement_score":0.0055222264,"about_ca_system_score_codex":0.00087719824,"about_ca_system_score_gemma":0.00089789915,"threshold_uncertainty_score":0.010980129},"labels":[],"label_agreement":null},{"id":"W1967253240","doi":"10.1103/physrevb.68.235330","title":"Theory of excitonic artificial atoms: InGaAs/GaAs quantum dots in strong magnetic fields","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":32,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada; Institute for Microstructural Sciences","funders":"","keywords":"Physics; Magnetic field; Quantum dot; Degenerate energy levels; Electron; Exciton; Condensed matter physics; Excitation; Spectral line; Atomic physics; Quantum mechanics","score_opus":0.019928530398399383,"score_gpt":0.30125805910590836,"score_spread":0.281329528707509,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1967253240","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.16738985,0.0043872525,0.6388787,0.0046806484,0.00077054533,0.0002304676,0.0003486617,0.00034090798,0.1829729],"genre_scores_gemma":[0.88078827,0.002087726,0.07630601,0.00096012745,0.00030548818,0.0005750286,0.00014354145,0.00011332021,0.038720433],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99979633,0.00006765423,0.000008072644,0.000017864773,0.000083283376,0.000026751222],"domain_scores_gemma":[0.99986625,0.000033840177,0.000014126745,0.000020166659,0.000037574584,0.000027966367],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00047204402,0.00052482093,0.00069214386,0.00063513615,0.0010093065,0.0010438801,0.0013146821,0.0012121473,0.0029018305],"category_scores_gemma":[0.00042138243,0.00031675174,0.0004295658,0.00047954128,0.0018272479,0.0012959408,0.0010355248,0.00080819643,0.0005040005],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000010285731,0.000015907382,0.00006572903,0.000039570423,0.000008457496,0.00008101272,0.0000652924,0.036417384,0.0019011184,0.95949,0.00072365644,0.0011816252],"study_design_scores_gemma":[0.000035172707,0.000039065344,0.000188416,0.00002166618,0.000009426606,0.00008612118,0.0000518502,0.4698676,0.0006882573,0.52279204,0.0062008644,0.000019508889],"about_ca_topic_score_codex":0.0018735549,"about_ca_topic_score_gemma":0.0016739235,"teacher_disagreement_score":0.0029018305,"about_ca_system_score_codex":0.001159562,"about_ca_system_score_gemma":0.00072919053,"threshold_uncertainty_score":0.00970757},"labels":[],"label_agreement":null},{"id":"W1967309914","doi":"10.1103/physrevb.61.11285","title":"Quasiparticle-quasiparticle scattering in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>superconductors","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Quasiparticle; Physics; Condensed matter physics","score_opus":0.019699036579861263,"score_gpt":0.25892739920494284,"score_spread":0.23922836262508157,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1967309914","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5411692,0.020247476,0.33987212,0.0016661339,0.00078099436,0.00016097115,0.0004250009,0.00041063278,0.09526748],"genre_scores_gemma":[0.9318555,0.008709682,0.040420108,0.00021246147,0.00021914115,0.000095001706,0.00028767675,0.00013934719,0.018061072],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998273,0.000048319806,0.000009930587,0.00003441639,0.000053387463,0.00002665571],"domain_scores_gemma":[0.99934083,0.00042558985,0.00006740051,0.00007776299,0.00006303009,0.000025363568],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006996715,0.00037861316,0.0003852175,0.00078416214,0.0007491601,0.0010898011,0.0004965284,0.0006761498,0.0039985096],"category_scores_gemma":[0.0011084387,0.00030176985,0.00046931568,0.0007246507,0.0008853042,0.0013489145,0.00041769008,0.00073097204,0.00062996236],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000060904316,0.00007367574,0.0011087176,0.0004202891,0.00002526038,0.0004851478,0.00035543018,0.011733431,0.033639345,0.9300105,0.0019773312,0.020109903],"study_design_scores_gemma":[0.00003534909,0.0001224725,0.004413257,0.00007763569,0.00002365489,0.0012543353,0.00016132687,0.1493454,0.042691562,0.7889997,0.012807875,0.00006741144],"about_ca_topic_score_codex":0.00064166496,"about_ca_topic_score_gemma":0.00061459234,"teacher_disagreement_score":0.0039985096,"about_ca_system_score_codex":0.00059378456,"about_ca_system_score_gemma":0.00038232416,"threshold_uncertainty_score":0.013376355},"labels":[],"label_agreement":null},{"id":"W1968233067","doi":"10.1103/physrevb.65.125328","title":"Weak localization, interaction effects, and the metallic phase in<i>p</i>-SiGe","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":42,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Condensed matter physics; Weak localization; Zeeman effect; Physics; Magnetoresistance; Metal; Sigma; Metal–insulator transition; Omega; Phase (matter); Materials science; Electrical resistivity and conductivity; Quantum mechanics; Magnetic field","score_opus":0.009591563575520773,"score_gpt":0.2775388495215445,"score_spread":0.26794728594602374,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1968233067","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9974101,0.0001850137,0.00054958765,0.000028469587,0.0000029918715,0.0000035987746,0.00004394113,0.000038480543,0.0017379046],"genre_scores_gemma":[0.99949586,0.00005018935,0.00014316404,0.000004428411,0.000001109664,0.0000019614483,0.000019185503,0.0000030466547,0.00028105857],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992347,0.00001160971,0.000005650501,0.000013068842,0.000021156417,0.000025106958],"domain_scores_gemma":[0.9997125,0.00015531424,0.00004598376,0.000027361022,0.000039962506,0.000018875098],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010711234,0.00019185322,0.00017162766,0.00044473103,0.00028575977,0.00032373294,0.00017833966,0.00021564635,0.0013530279],"category_scores_gemma":[0.00035071064,0.00010513471,0.00012661889,0.00039302593,0.0004138444,0.00018222268,0.00017317718,0.00023987958,0.00018636377],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00043100142,0.00005652258,0.005579946,0.00014911298,0.00003090826,0.00049715803,0.00023677573,0.0013673152,0.9848675,0.0014762061,0.00014742272,0.0051601366],"study_design_scores_gemma":[0.000014616196,0.00042299315,0.017425355,0.000010097306,0.000054751625,0.0005918665,0.00016976692,0.008659059,0.97120655,0.0006057867,0.0008237669,0.000015348349],"about_ca_topic_score_codex":0.0007946706,"about_ca_topic_score_gemma":0.001496248,"teacher_disagreement_score":0.0013530279,"about_ca_system_score_codex":0.00011109002,"about_ca_system_score_gemma":0.00006662993,"threshold_uncertainty_score":0.004526317},"labels":[],"label_agreement":null},{"id":"W1968897292","doi":"10.1103/physrevb.65.121403","title":"Electronic structure and tunneling resonance spectra of nanoscopic aluminum islands","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Nanoscopic scale; Quantum tunnelling; Fermi level; Condensed matter physics; Electronic structure; Resonance (particle physics); Electron; Materials science; Scanning tunneling microscope; Physics; Atomic physics; Nanotechnology; Quantum mechanics","score_opus":0.0077965007323638315,"score_gpt":0.2615626533744624,"score_spread":0.25376615264209856,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1968897292","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9980878,0.00008324848,0.0009013888,0.000022028695,0.0000022308743,0.0000020677107,0.000025774449,0.000021463638,0.0008538187],"genre_scores_gemma":[0.9993105,0.00003125094,0.00040952538,0.0000042823854,9.567411e-7,0.000001940858,0.000031935244,0.000004155862,0.0002055107],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999558,0.000004792916,0.0000012209522,0.000009497607,0.00002022569,0.00000844849],"domain_scores_gemma":[0.9998952,0.000036547077,0.000022181133,0.000011755418,0.00002412092,0.000010217259],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008493042,0.00013739211,0.0001238144,0.00027244902,0.00015978511,0.00015775784,0.00033084876,0.00030545954,0.0013734474],"category_scores_gemma":[0.00029636058,0.000100515295,0.00012216598,0.00011880066,0.00026842346,0.0001551357,0.00013365442,0.00019800609,0.00013353558],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027271462,0.000056501773,0.0037177952,0.0001197776,0.00004124941,0.00035713761,0.0002932027,0.015795732,0.9684184,0.006466141,0.00026571314,0.0041955896],"study_design_scores_gemma":[0.0001025791,0.00069183443,0.05271427,0.000029909526,0.00007121919,0.00056921283,0.00052245136,0.41594118,0.5226922,0.005110911,0.0014938551,0.000060399376],"about_ca_topic_score_codex":0.00078417483,"about_ca_topic_score_gemma":0.00058191165,"teacher_disagreement_score":0.0013734474,"about_ca_system_score_codex":0.00019473939,"about_ca_system_score_gemma":0.000057855428,"threshold_uncertainty_score":0.004594624},"labels":[],"label_agreement":null},{"id":"W1969495305","doi":"10.1103/physrevb.66.054104","title":"Phase diagram of the ferroelectric relaxor<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mn>1</mml:mn><mml:mn/><mml:mi>−</mml:mi><mml:mi>x</mml:mi><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbMg</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi>−</mml:mi><mml:mi>x</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbTiO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":849,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Brookhaven National Laboratory; Office of Naval Research; U.S. Department of Energy","keywords":"Tetragonal crystal system; Monoclinic crystal system; Phase diagram; Crystallography; Phase boundary; Ferroelectricity; Phase (matter); Physics; Materials science; Type (biology); Condensed matter physics; Crystal structure; Chemistry; Quantum mechanics; Dielectric","score_opus":0.018918261508458767,"score_gpt":0.2512553869217942,"score_spread":0.23233712541333545,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1969495305","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7240753,0.0032051422,0.02013702,0.00493016,0.0004580199,0.00022126187,0.005687913,0.0024102854,0.23887484],"genre_scores_gemma":[0.9342073,0.00076821825,0.0114018805,0.00054154097,0.00004322835,0.00017592708,0.0028958307,0.00048363922,0.04948247],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999892,0.00001865465,0.0000025406748,0.000024622213,0.00003305391,0.00002916413],"domain_scores_gemma":[0.9998154,0.000060273545,0.000029435832,0.000014219206,0.00005434522,0.000026348996],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017809037,0.00023233479,0.0003163238,0.0004348095,0.00073301553,0.0008042802,0.00052411255,0.0007166329,0.045044873],"category_scores_gemma":[0.0004576814,0.00027795119,0.00016348716,0.00030659247,0.0005114119,0.00071214396,0.00020641794,0.0008021902,0.0035683517],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.004298067,0.0004957894,0.0033727698,0.001583943,0.00015255426,0.0009016664,0.000659145,0.03585496,0.634961,0.19394892,0.08446694,0.03930424],"study_design_scores_gemma":[0.0007373896,0.0027070579,0.015760066,0.0003203882,0.00012321358,0.0005915764,0.00086132076,0.34847495,0.47268316,0.03988802,0.11759114,0.00026169806],"about_ca_topic_score_codex":0.0034246854,"about_ca_topic_score_gemma":0.004966233,"teacher_disagreement_score":0.045044873,"about_ca_system_score_codex":0.00064298604,"about_ca_system_score_gemma":0.00080287346,"threshold_uncertainty_score":0.15069008},"labels":[],"label_agreement":null},{"id":"W1969760811","doi":"10.1103/physrevb.66.205322","title":"Screening and electronic correlations in quantum wires in strong magnetic fields: Filling factor dependence","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"","keywords":"Physics; Condensed matter physics; Coulomb; Order (exchange); Energy (signal processing); Fermi energy; Atomic physics; Electron; Quantum mechanics","score_opus":0.017321242635015773,"score_gpt":0.26514465552113314,"score_spread":0.24782341288611737,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1969760811","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99783653,0.00003401851,0.00079736783,0.000038169183,0.0000028221532,0.0000031136071,0.000019535373,0.000020943051,0.0012474192],"genre_scores_gemma":[0.999532,0.00002977508,0.00016364978,0.0000046181176,0.0000022267998,0.0000029433986,0.000017860473,0.0000059522567,0.0002410318],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99988854,0.000025642597,0.000004905872,0.0000108668855,0.000026144164,0.00004399729],"domain_scores_gemma":[0.99958354,0.00014814956,0.00011208059,0.00003797364,0.000059388618,0.000058883757],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027090812,0.00021859692,0.00018821888,0.00040247352,0.00036535066,0.0006405501,0.00017780549,0.00020185846,0.0011926822],"category_scores_gemma":[0.0007564368,0.00017969753,0.00011759962,0.00021520759,0.0006588817,0.00039207446,0.00042773012,0.00017952146,0.00013862278],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000986288,0.00018258157,0.0073354417,0.00013423388,0.00004507847,0.0010518178,0.00037295796,0.04639934,0.9020809,0.034068312,0.00038620905,0.0069568995],"study_design_scores_gemma":[0.00013267755,0.001310125,0.03166549,0.000074580465,0.00008255486,0.00041959737,0.00045791222,0.36676753,0.5796796,0.017828325,0.0014660214,0.000115601644],"about_ca_topic_score_codex":0.00084010087,"about_ca_topic_score_gemma":0.0014044766,"teacher_disagreement_score":0.0011926822,"about_ca_system_score_codex":0.0003441471,"about_ca_system_score_gemma":0.00029011106,"threshold_uncertainty_score":0.003989935},"labels":[],"label_agreement":null},{"id":"W1970134012","doi":"10.1103/physrevb.61.5793","title":"Electronic properties of amorphous carbon nanotubes","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Carbon nanotube; Materials science; Graphite; Fermi level; Electronic structure; Amorphous carbon; Carbon fibers; Fermi energy; Band gap; Condensed matter physics; Lattice (music); Amorphous solid; Chemical physics; Nanotechnology; Composite material; Electron; Physics; Crystallography; Chemistry; Composite number","score_opus":0.009926922074798488,"score_gpt":0.25645945957800637,"score_spread":0.2465325375032079,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1970134012","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9219545,0.0039338707,0.041088235,0.00031754913,0.0001330074,0.000032879816,0.0005293672,0.00023764513,0.031772878],"genre_scores_gemma":[0.9957045,0.00061758247,0.0018588975,0.000025245936,0.000021210384,0.000009976352,0.00015937033,0.000013994576,0.0015892921],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999372,0.0000070744686,0.000004085152,0.000009493844,0.000032788907,0.000009426738],"domain_scores_gemma":[0.99990606,0.000032136602,0.0000127065705,0.000016132044,0.00002477179,0.000008106366],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000093191775,0.00022597563,0.00021732385,0.00036293382,0.00034209786,0.00040132913,0.00016273797,0.00036403994,0.0011471715],"category_scores_gemma":[0.0003379243,0.00007140526,0.00015811055,0.0002658407,0.00019650876,0.00035693386,0.00012433178,0.00018427309,0.00023692874],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018798334,0.00011511549,0.0050729257,0.00037331512,0.000068219415,0.0011253988,0.00014038944,0.25907615,0.5818374,0.12634856,0.0016397989,0.024014782],"study_design_scores_gemma":[0.0000294981,0.00040357397,0.008434053,0.00006570379,0.0000535391,0.001239574,0.00009958732,0.76830477,0.14457273,0.060935374,0.015789239,0.00007238067],"about_ca_topic_score_codex":0.00037806638,"about_ca_topic_score_gemma":0.00019773403,"teacher_disagreement_score":0.0011471715,"about_ca_system_score_codex":0.00013738738,"about_ca_system_score_gemma":0.00012218437,"threshold_uncertainty_score":0.0038377047},"labels":[],"label_agreement":null},{"id":"W1970646010","doi":"10.1103/physrevb.62.8638","title":"Transverse spin freezing in ruthenium-doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>a</mml:mi><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>90</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Zr</mml:mi></mml:mrow><mml:mrow><mml:mn>10</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Australian Research Council; Natural Sciences and Engineering Research Council of Canada; TRIUMF","keywords":"Muon spin spectroscopy; Physics; Condensed matter physics; Ferromagnetism; Muon; Mössbauer spectroscopy; Spin glass; Order (exchange); Relaxation (psychology); Crystallography; Nuclear magnetic resonance; Superconductivity; Particle physics; Nuclear physics; Chemistry","score_opus":0.015313577871410064,"score_gpt":0.25150518741581207,"score_spread":0.236191609544402,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1970646010","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98955834,0.0004488654,0.0021129618,0.00017756686,0.000084464154,0.000024294053,0.00050278543,0.0001801799,0.006910457],"genre_scores_gemma":[0.9921163,0.00023437309,0.00081302243,0.000032536824,0.000007656669,0.000010485346,0.00032687245,0.00008261234,0.0063761906],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990475,0.0000070936007,0.0000026588018,0.000024493995,0.000021107131,0.00003987463],"domain_scores_gemma":[0.9998447,0.00005153015,0.000031256197,0.000025501198,0.00002578372,0.000021350254],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021126283,0.00022262045,0.00024771492,0.00017625053,0.00040145367,0.00053609704,0.00058676675,0.00027343034,0.004946596],"category_scores_gemma":[0.00033544286,0.00019354228,0.0002474024,0.0001676139,0.0004199208,0.0004604415,0.00023126972,0.00065288064,0.00044381435],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006921093,0.000092498514,0.00044378242,0.00013800782,0.000039502327,0.00025115878,0.0003285571,0.0014114814,0.98726416,0.0039348137,0.001489551,0.003914281],"study_design_scores_gemma":[0.00004260176,0.00025506585,0.0012165472,0.000017879765,0.000017215674,0.00004825005,0.00010318239,0.0057789464,0.990231,0.00028622334,0.0019833895,0.000019689023],"about_ca_topic_score_codex":0.009682147,"about_ca_topic_score_gemma":0.009980785,"teacher_disagreement_score":0.009682147,"about_ca_system_score_codex":0.0007731019,"about_ca_system_score_gemma":0.00045390666,"threshold_uncertainty_score":0.019251585},"labels":[],"label_agreement":null},{"id":"W1971293863","doi":"10.1103/physrevb.63.045316","title":"Coherent control of the nonradiative decay of excitons in asymmetric quantum well structures","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum optics and atomic interactions","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Exciton; Atomic physics; Biexciton; Coupling (piping); Photon; Population; Condensed matter physics; Quantum mechanics; Materials science","score_opus":0.00900993346890517,"score_gpt":0.29492207719460695,"score_spread":0.2859121437257018,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1971293863","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8985185,0.00023778969,0.095489405,0.00020106892,0.000020317875,0.000034004206,0.000022294038,0.00006433509,0.005412386],"genre_scores_gemma":[0.9916175,0.00009452031,0.0077196383,0.00001551433,0.000004267637,0.000028224027,0.000007930626,0.00000935396,0.00050303165],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990237,0.000018247607,0.0000043396376,0.00001685122,0.000039110862,0.000019145044],"domain_scores_gemma":[0.9998388,0.00006419265,0.0000381531,0.000019887797,0.000019620718,0.000019287167],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023461762,0.0002489269,0.0001815143,0.00015518304,0.00026702826,0.00046022385,0.00076107413,0.00033914883,0.00073900155],"category_scores_gemma":[0.0003321236,0.00017140753,0.00016885517,0.00012798805,0.00070190884,0.000563987,0.00038405808,0.0003719144,0.000088708875],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012630627,0.00020974404,0.0011507827,0.00010399722,0.000029577339,0.0001966406,0.00016270424,0.1210705,0.6951794,0.17255554,0.00017886753,0.009036009],"study_design_scores_gemma":[0.00006445989,0.00023890579,0.0005834408,0.000009060411,0.000017768156,0.00006148553,0.00005144089,0.8256239,0.15592338,0.016510874,0.0008857485,0.000029473917],"about_ca_topic_score_codex":0.0003764123,"about_ca_topic_score_gemma":0.0006712052,"teacher_disagreement_score":0.00076107413,"about_ca_system_score_codex":0.0005577753,"about_ca_system_score_gemma":0.00030699262,"threshold_uncertainty_score":0.0040469766},"labels":[],"label_agreement":null},{"id":"W1971597268","doi":"10.1103/physrevb.61.5237","title":"Bosons in a lattice: Exciton-phonon condensate in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Cold Atom Physics and Bose-Einstein Condensates","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"","keywords":"Phonon; Physics; Exciton; Semiclassical physics; Lattice (music); Condensed matter physics; Quantum mechanics; Quantum","score_opus":0.015215167874245733,"score_gpt":0.25549503162310416,"score_spread":0.24027986374885843,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1971597268","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8386093,0.00071867567,0.06622982,0.0028124761,0.00030333013,0.00010303428,0.0009514688,0.00046524816,0.08980665],"genre_scores_gemma":[0.9502745,0.00037672822,0.013144807,0.00017651223,0.00007690743,0.00007798262,0.0003745437,0.00019552327,0.035302512],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998745,0.00002227509,0.0000030081724,0.000012783068,0.000054580763,0.000032900705],"domain_scores_gemma":[0.99988043,0.000041181465,0.000014027386,0.000015146896,0.00001680149,0.000032309465],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030226537,0.00036991233,0.00050060276,0.00085193245,0.0008369297,0.0017766469,0.001074382,0.0008140699,0.021393886],"category_scores_gemma":[0.000501127,0.00027419702,0.00040690674,0.00082196726,0.0016610341,0.0014319611,0.0009344073,0.0008616516,0.0012357791],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012748252,0.00022051742,0.0018056914,0.00019926667,0.000032385764,0.00065917865,0.0002718701,0.1762473,0.012368792,0.79603714,0.0057318597,0.006298589],"study_design_scores_gemma":[0.00020564754,0.000046384885,0.0012062062,0.00002674886,0.000017645856,0.000118071475,0.00032792977,0.8738005,0.0052904896,0.11451505,0.004396429,0.00004896955],"about_ca_topic_score_codex":0.01340687,"about_ca_topic_score_gemma":0.01891809,"teacher_disagreement_score":0.021393886,"about_ca_system_score_codex":0.0013929702,"about_ca_system_score_gemma":0.0011824724,"threshold_uncertainty_score":0.07156968},"labels":[],"label_agreement":null},{"id":"W1971832291","doi":"10.1103/physrevb.64.115101","title":"Threshold behavior of the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">Cu</mml:mi><mml:mi> </mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi>L</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi>M</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn><mml:mo>,</mml:mo><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi>M</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn><mml:mo>,</mml:mo><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>Auger effect of Cu metal at the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>L</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>edge","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Electron and X-Ray Spectroscopy Techniques","field":"Materials Science","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University; Canadian Light Source (Canada); University of Saskatchewan","funders":"","keywords":"Atomic physics; Excited state; Auger; Physics; Line (geometry); Photoexcitation; Photon energy; Raman scattering; Energy (signal processing); Excitation; Photon; Raman spectroscopy; Optics; Quantum mechanics","score_opus":0.016175354402924183,"score_gpt":0.26225567583771814,"score_spread":0.24608032143479397,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1971832291","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.52469134,0.0029786015,0.16060801,0.008583998,0.0015235676,0.00022696068,0.0068583274,0.0163338,0.27819532],"genre_scores_gemma":[0.96088713,0.00025374035,0.0075335046,0.00054897857,0.00006884769,0.000114290786,0.0019403038,0.0016019158,0.027051393],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99884206,0.000096041374,0.00003652108,0.00027849924,0.0003845038,0.00036238309],"domain_scores_gemma":[0.9956863,0.0016775785,0.00029489305,0.00047144745,0.0012774144,0.00059249665],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008429335,0.00057490094,0.00089647155,0.0016519371,0.0014187692,0.0034616087,0.0020102914,0.0018833794,0.0470008],"category_scores_gemma":[0.012083263,0.00056676986,0.00080185744,0.00075862225,0.0011154324,0.0030503613,0.0013372074,0.0024652116,0.010034888],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.002705372,0.0010154069,0.018944211,0.0014181436,0.00033691138,0.0020631035,0.0029183778,0.12605995,0.18060666,0.37736756,0.19380693,0.09275745],"study_design_scores_gemma":[0.0001079902,0.00036727678,0.0155593,0.00035125832,0.00012891485,0.00097556924,0.0015384353,0.76684177,0.090890266,0.09873777,0.02421596,0.0002855055],"about_ca_topic_score_codex":0.011798757,"about_ca_topic_score_gemma":0.008106664,"teacher_disagreement_score":0.0470008,"about_ca_system_score_codex":0.0023909917,"about_ca_system_score_gemma":0.0018016162,"threshold_uncertainty_score":0.1572333},"labels":[],"label_agreement":null},{"id":"W1972456488","doi":"10.1103/physrevb.61.5212","title":"Fermi surface of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mn>2</mml:mn><mml:mi>H</mml:mi><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">TaSe</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and its relation to the charge-density wave","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic and Molecular Conductors Research","field":"Materials Science","cited_by":49,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Saddle point; Physics; Fermi surface; Condensed matter physics; Fermi level; Geometry; Quantum mechanics; Superconductivity","score_opus":0.021832332224847463,"score_gpt":0.2629693790059063,"score_spread":0.24113704678105882,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1972456488","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8742221,0.0005922295,0.012882207,0.00088845275,0.00017057039,0.000032565917,0.0027051982,0.0006352562,0.10787133],"genre_scores_gemma":[0.9829069,0.00015589627,0.0021199556,0.00006221739,0.00000837742,0.000028451315,0.0016811943,0.00012205762,0.012914984],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999031,0.000005160051,0.0000026744244,0.000018534589,0.000028211438,0.0000423623],"domain_scores_gemma":[0.9999534,0.000012730109,0.000004191176,0.000008776837,0.000013897699,0.000006938747],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000107174965,0.0004723762,0.0004480913,0.0007390752,0.0008301233,0.0010743728,0.0005133056,0.0010600621,0.020190267],"category_scores_gemma":[0.00022704617,0.00018290104,0.00034384258,0.0005230388,0.0005049336,0.0004871071,0.00035389597,0.0006386218,0.0019756085],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0020702675,0.00028267386,0.0097476775,0.0007670312,0.00015529642,0.001695161,0.0010670954,0.042304143,0.37313122,0.4904679,0.030070016,0.04824145],"study_design_scores_gemma":[0.00014770964,0.0007360309,0.043422,0.00016388774,0.00012037143,0.0013019618,0.0015007099,0.4570546,0.32304242,0.13315508,0.03914162,0.00021351807],"about_ca_topic_score_codex":0.004713582,"about_ca_topic_score_gemma":0.0041561928,"teacher_disagreement_score":0.020190267,"about_ca_system_score_codex":0.0009833064,"about_ca_system_score_gemma":0.00046176146,"threshold_uncertainty_score":0.06754315},"labels":[],"label_agreement":null},{"id":"W1972492924","doi":"10.1103/physrevb.62.5345","title":"Anderson prescription for surfaces and impurities","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Impurity; Formalism (music); Anderson impurity model; Condensed matter physics; Superconductivity; Physics; Electron; Quantum mechanics","score_opus":0.013386835699256886,"score_gpt":0.2850135203654973,"score_spread":0.27162668466624046,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1972492924","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.815717,0.0013935008,0.05589493,0.0015374077,0.00021778392,0.000058150337,0.00023011914,0.00032107346,0.12463001],"genre_scores_gemma":[0.98860234,0.00030326008,0.006265238,0.0001249982,0.000049563954,0.000024056917,0.00006062194,0.000049676106,0.0045201825],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997582,0.00006464021,0.0000087283925,0.000020000689,0.000096793374,0.000051748233],"domain_scores_gemma":[0.9994646,0.00022559866,0.00007095731,0.00011185189,0.00008369965,0.000043292846],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004262503,0.000254434,0.0004603533,0.0005673495,0.0006367963,0.00096846255,0.00055122917,0.0006734732,0.0021129488],"category_scores_gemma":[0.0012842617,0.00010788638,0.00030437292,0.0004599048,0.0009245358,0.0010386296,0.0009856814,0.00048055,0.00031592717],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000074470714,0.00003727744,0.00072013785,0.00006588854,0.000009545258,0.00013504001,0.0000611113,0.036211565,0.005239509,0.9521,0.0014010699,0.003944466],"study_design_scores_gemma":[0.000056520512,0.00007603578,0.0006679557,0.000024245963,0.000025431686,0.00016967066,0.00016092538,0.6365279,0.007146441,0.35057044,0.0045476947,0.000026730606],"about_ca_topic_score_codex":0.0019691337,"about_ca_topic_score_gemma":0.0012010324,"teacher_disagreement_score":0.0021129488,"about_ca_system_score_codex":0.00049360876,"about_ca_system_score_gemma":0.0005567186,"threshold_uncertainty_score":0.007068515},"labels":[],"label_agreement":null},{"id":"W1972522924","doi":"10.1103/physrevb.68.104425","title":"Electrical transport and magnetotransport studies in WEAK ITINERANT amorphous<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>90</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mn</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Zr</mml:mi></mml:mrow><mml:mrow><mml:mn>10</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi/><mml:mo>(</mml:mo><mml:mn>0</mml:mn><mml:mn/><mml:mo>&lt;~</mml:mo><mml:mi>x</mml:mi><mml:mo>&lt;~</mml:mo><mml:mn>1</mml:mn><mml:mn>6</mml:mn><mml:mo>)</mml:mo></mml:math>alloys","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Dalhousie University","funders":"Natural Sciences and Engineering Research Council of Canada; Killam Trusts; Dalhousie University; Council of Scientific and Industrial Research, India","keywords":"Electrical resistivity and conductivity; Condensed matter physics; Magnetization; Magnetoresistance; Curie temperature; Materials science; Anisotropy; Amorphous solid; Ferromagnetism; Atmospheric temperature range; Residual resistivity; Magnetic field; Physics; Chemistry; Thermodynamics; Superconductivity; Crystallography","score_opus":0.015251070147159575,"score_gpt":0.24469539944169838,"score_spread":0.2294443292945388,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1972522924","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9852182,0.00083640014,0.001101545,0.0003781664,0.00007185196,0.000013690149,0.0006011784,0.000062224084,0.011716609],"genre_scores_gemma":[0.9902159,0.00078419695,0.0010181523,0.00007597766,0.000019793815,0.000020520456,0.0005661766,0.000041616764,0.0072576255],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999119,0.000009438374,0.000004696144,0.000021864493,0.00002913641,0.000023063201],"domain_scores_gemma":[0.99990654,0.00002708338,0.00001695834,0.000010678471,0.000026854326,0.00001195811],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015839151,0.0002451331,0.00018441686,0.00029409982,0.0007123808,0.00065710675,0.00044867152,0.00044798135,0.0063562207],"category_scores_gemma":[0.00035411396,0.00018847962,0.00014436981,0.000447127,0.00039525537,0.0005858891,0.0002611378,0.0006504364,0.0006361018],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000691114,0.00009018851,0.0006474237,0.00029173298,0.00002464554,0.0005865967,0.00042567617,0.0007486844,0.9800316,0.009266579,0.0035782752,0.0036174161],"study_design_scores_gemma":[0.000061947016,0.0005442084,0.0060125343,0.00007694359,0.000055412354,0.00030519147,0.00124272,0.008191822,0.97130865,0.001451686,0.0107081365,0.00004070174],"about_ca_topic_score_codex":0.0037964445,"about_ca_topic_score_gemma":0.0054462524,"teacher_disagreement_score":0.0063562207,"about_ca_system_score_codex":0.00037692,"about_ca_system_score_gemma":0.00018599401,"threshold_uncertainty_score":0.021263659},"labels":[],"label_agreement":null},{"id":"W1972742630","doi":"10.1103/physrevb.66.195303","title":"Electronic states of ultrathin InAs/InP (001) quantum wells: A tight-binding study of the effects of band offset, strain, and intermixing","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Polytechnique Montréal","funders":"Natural Sciences and Engineering Research Council of Canada; Canada Research Chairs","keywords":"Tight binding; Quantum well; Condensed matter physics; Materials science; Monolayer; Valence band; Band offset; Electronic band structure; Electronic structure; Band gap; Physics; Nanotechnology; Optics","score_opus":0.007612821357052151,"score_gpt":0.26107617543660366,"score_spread":0.2534633540795515,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1972742630","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9966539,0.00008413669,0.0024169448,0.000024460878,0.000002596164,0.0000044175804,0.00002203192,0.0000129533555,0.000778537],"genre_scores_gemma":[0.99790996,0.000090725465,0.0016243083,0.000009380839,0.000002080245,0.0000111264535,0.000039179387,0.00000733363,0.00030585672],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99987125,0.00002778735,0.0000037186117,0.000021191458,0.000046012774,0.00003004463],"domain_scores_gemma":[0.9998047,0.000100894315,0.000030944684,0.00002110047,0.00002433091,0.000018069542],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029011493,0.00037703916,0.00041761086,0.00028180992,0.0005907521,0.00048764952,0.0007685302,0.0004478588,0.0013674325],"category_scores_gemma":[0.0004061431,0.00030134092,0.00028400953,0.00023514345,0.0007096755,0.00055341073,0.000329266,0.0003754955,0.00013872248],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00031613404,0.00038283173,0.00918183,0.00031066377,0.00013360527,0.0005689078,0.00030938946,0.6070869,0.34603557,0.026211496,0.00027590749,0.009186761],"study_design_scores_gemma":[0.00007139039,0.0004994108,0.0073521812,0.00003431161,0.00006617527,0.000115226096,0.00024170731,0.9074198,0.07900204,0.0046529765,0.0005018921,0.000042932767],"about_ca_topic_score_codex":0.0033822092,"about_ca_topic_score_gemma":0.0036158862,"teacher_disagreement_score":0.0033822092,"about_ca_system_score_codex":0.0006840905,"about_ca_system_score_gemma":0.0003314091,"threshold_uncertainty_score":0.0067250133},"labels":[],"label_agreement":null},{"id":"W1973250303","doi":"10.1103/physrevb.61.1639","title":"Calculations of transport properties with the linearized augmented plane-wave method","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Heusler alloys: electronic and magnetic properties","field":"Materials Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences","funders":"","keywords":"Interpolation (computer graphics); Plane wave; Fermi surface; Dispersion (optics); Symmetry (geometry); Plane (geometry); Computational physics; Physics; Simple (philosophy); Electronic band structure; Linear interpolation; Dispersion relation; Fermi Gamma-ray Space Telescope; Condensed matter physics; Materials science; Mathematical analysis; Optics; Classical mechanics; Mathematics; Geometry","score_opus":0.020448434793356045,"score_gpt":0.2733186767543118,"score_spread":0.25287024196095576,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1973250303","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.13045429,0.00050866784,0.82484365,0.00042345573,0.00012260233,0.00036873505,0.0014735111,0.0016860699,0.04011893],"genre_scores_gemma":[0.5957765,0.0007732906,0.38158402,0.00017521983,0.00006894623,0.0018537312,0.0015530541,0.0005166462,0.01769856],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997329,0.00007943382,0.000010174629,0.000014086227,0.00011843091,0.000044982567],"domain_scores_gemma":[0.99957496,0.00013241911,0.000025827725,0.000085910666,0.00015393471,0.000026928961],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005522522,0.00069210824,0.0011994833,0.0009172501,0.00089674443,0.00091129646,0.0019935416,0.0012007481,0.0049466267],"category_scores_gemma":[0.0009742963,0.00045437936,0.00068642845,0.0009982759,0.00044040175,0.00079887384,0.00064051687,0.0010053057,0.0014047058],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013994472,0.00009256488,0.0004208815,0.0002845215,0.00007539363,0.0003257799,0.0001181829,0.8189338,0.011891235,0.13851206,0.0031298485,0.026075834],"study_design_scores_gemma":[0.000014395959,0.000014094861,0.00008305535,0.0000051944157,0.0000051370776,0.000016026146,0.000010509662,0.9929501,0.00096310384,0.0050449413,0.0008836664,0.000009833167],"about_ca_topic_score_codex":0.003513997,"about_ca_topic_score_gemma":0.002997773,"teacher_disagreement_score":0.0049466267,"about_ca_system_score_codex":0.0006272362,"about_ca_system_score_gemma":0.0012636954,"threshold_uncertainty_score":0.016548097},"labels":[],"label_agreement":null},{"id":"W1974001490","doi":"10.1103/physrevb.62.1993","title":"Collective modes of quantum Hall stripes","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"National Science Foundation","keywords":"Brillouin zone; Physics; Observable; Quasiparticle; Condensed matter physics; Quantum Hall effect; Phonon; Wave vector; Phase (matter); Quantum; Phase transition; Quantum mechanics; Electron","score_opus":0.00981725975129122,"score_gpt":0.2707150364813279,"score_spread":0.26089777673003667,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1974001490","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9777829,0.00014104866,0.017903585,0.00009107594,0.000017727007,0.000012074896,0.000026211741,0.00006448988,0.0039608832],"genre_scores_gemma":[0.9963535,0.000038162976,0.0030568563,0.000006391501,0.000005215198,0.00001071761,0.000020902731,0.000008374751,0.000499828],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999565,0.000008352225,0.0000017585849,0.0000071526483,0.000014023931,0.000012200435],"domain_scores_gemma":[0.9998586,0.00004577947,0.000025455924,0.000027586277,0.000023205483,0.000019223644],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022749668,0.00014044945,0.00014539668,0.00043055072,0.0003240303,0.00048703866,0.00021811953,0.0002386327,0.00133966],"category_scores_gemma":[0.0004629232,0.00009490358,0.00015498695,0.00019298891,0.00065032573,0.0005244976,0.0003138318,0.00023375663,0.000090676585],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00030858495,0.000118203774,0.0116431145,0.00023895974,0.00005277297,0.00032126732,0.0012411246,0.19872862,0.1507301,0.60441434,0.0022665923,0.029936204],"study_design_scores_gemma":[0.00007012037,0.00011100289,0.0069796094,0.00001896169,0.000010861464,0.00012821834,0.00022862929,0.8724093,0.016401617,0.102044806,0.0015625809,0.000034285742],"about_ca_topic_score_codex":0.00047594114,"about_ca_topic_score_gemma":0.0004809384,"teacher_disagreement_score":0.00133966,"about_ca_system_score_codex":0.00027549439,"about_ca_system_score_gemma":0.00019893222,"threshold_uncertainty_score":0.0044816732},"labels":[],"label_agreement":null},{"id":"W1975927254","doi":"10.1103/physrevb.62.5786","title":"Relation of domain properties to structural changes in perpendicularly magnetized ultrathin films","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Materials science; Annealing (glass); Condensed matter physics; Auger electron spectroscopy; Anisotropy; Magnetic domain; Magnetic anisotropy; Monolayer; Perpendicular; Anisotropy energy; Activation energy; Domain wall (magnetism); Nuclear magnetic resonance; Magnetic susceptibility; Magnetic field; Magnetization; Optics; Physics; Chemistry; Nanotechnology; Composite material","score_opus":0.009869600675652151,"score_gpt":0.2562598457651124,"score_spread":0.24639024508946025,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1975927254","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99865097,0.00028481815,0.00059043977,0.000013858486,0.0000033135757,0.0000053900585,0.000068231435,0.000022347649,0.00036060056],"genre_scores_gemma":[0.9986525,0.0001622626,0.00065723504,0.000008181434,0.00000357699,0.000009177543,0.00014167043,0.000011257136,0.0003541717],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99989307,0.00001138327,0.000008643763,0.000027366588,0.000036706242,0.000022793532],"domain_scores_gemma":[0.99969447,0.000076557604,0.00010935958,0.000028251827,0.00006042659,0.000030964653],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000097176824,0.00021870263,0.000223508,0.00030282928,0.00016637557,0.00040285813,0.00020054988,0.00022479157,0.0011168763],"category_scores_gemma":[0.00047182787,0.00029161462,0.00012417798,0.00021645591,0.0002044837,0.00030140785,0.00016652793,0.00051843765,0.00013676769],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000080522426,0.0000127895455,0.00085762254,0.000018700977,0.000007658057,0.000033126107,0.000018849376,0.00008184893,0.998254,0.000032378684,0.000009330503,0.0005931384],"study_design_scores_gemma":[0.000008588614,0.0001332856,0.02028833,0.0000027718793,0.000013485924,0.000118103875,0.000026065449,0.001092809,0.9780238,0.000027653537,0.00026068295,0.000004344859],"about_ca_topic_score_codex":0.00049998163,"about_ca_topic_score_gemma":0.00065175875,"teacher_disagreement_score":0.0011168763,"about_ca_system_score_codex":0.0001876018,"about_ca_system_score_gemma":0.00007204422,"threshold_uncertainty_score":0.0037363172},"labels":[],"label_agreement":null},{"id":"W1976246855","doi":"10.1103/physrevb.66.012505","title":"Specific-heat anomaly in the<i>d</i>density wave state and emergence of inhomogeneous orbital antiferromagnetic order","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Alfred P. Sloan Foundation","keywords":"Pseudogap; Antiferromagnetism; Condensed matter physics; Physics; Anomaly (physics); Density wave theory; Superconductivity; Ground state; Charge density wave; Spin density wave; Density of states; Cuprate; State (computer science); Quantum mechanics; Mathematics","score_opus":0.021927736271143885,"score_gpt":0.250862292390985,"score_spread":0.22893455611984112,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1976246855","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99466914,0.00020082059,0.002236004,0.00008028523,0.000009640897,0.0000044496032,0.000011346305,0.000032832435,0.0027555686],"genre_scores_gemma":[0.99922836,0.00009247141,0.0004924228,0.0000070402066,0.000007484112,0.000002952872,0.000008753135,0.000004329101,0.00015612062],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999466,0.000011921036,0.0000029965522,0.0000097962375,0.000012877845,0.000015847756],"domain_scores_gemma":[0.9996369,0.00012222088,0.00013087288,0.00004248415,0.00003416821,0.00003337922],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001570346,0.00019620828,0.00021026166,0.00042345098,0.00028191818,0.00053868425,0.00035385482,0.00019552307,0.0005459272],"category_scores_gemma":[0.00073248276,0.00010571205,0.0001583133,0.00026574996,0.0011895077,0.00045705447,0.00047292226,0.00030384236,0.00008282776],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00046156882,0.00025069897,0.017185124,0.0003810462,0.00005136364,0.0015323621,0.0006945932,0.026743393,0.616392,0.31525344,0.0011360924,0.019918306],"study_design_scores_gemma":[0.00007020738,0.00041968547,0.03025653,0.000038967777,0.000081882936,0.0015485322,0.00036537796,0.550782,0.27212918,0.14152929,0.0026606594,0.00011772098],"about_ca_topic_score_codex":0.00048044193,"about_ca_topic_score_gemma":0.00033666525,"teacher_disagreement_score":0.0005459272,"about_ca_system_score_codex":0.00026770326,"about_ca_system_score_gemma":0.00014344235,"threshold_uncertainty_score":0.001942277},"labels":[],"label_agreement":null},{"id":"W1976345782","doi":"10.1103/physrevb.67.121411","title":"Electrical transport through oligophenylene molecules: A first-principles study of the length dependence","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":81,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Materials science; Contact resistance; Electrode; Molecular wire; Current (fluid); Length scale; Break junction; Voltage; Condensed matter physics; Molecule; Molecular physics; Nanotechnology; Physics; Optoelectronics; Mechanics; Thermodynamics; Quantum tunnelling","score_opus":0.012623342717378982,"score_gpt":0.24915737527472168,"score_spread":0.2365340325573427,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1976345782","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97447056,0.000545689,0.01821252,0.00021563438,0.000024471667,0.000044209806,0.00016070913,0.00011622611,0.0062098703],"genre_scores_gemma":[0.98791915,0.000685596,0.009630718,0.000044936398,0.000010633959,0.00007849262,0.00012195739,0.00005378008,0.0014547729],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999912,0.000012362385,0.0000026285318,0.000009850815,0.00003941063,0.000023682067],"domain_scores_gemma":[0.99958736,0.00024309213,0.0000423184,0.00003483893,0.000072942734,0.000019503917],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034041263,0.00038414483,0.0005941715,0.00032311658,0.0004589512,0.0004600059,0.00074496475,0.00080371974,0.00109327],"category_scores_gemma":[0.001181341,0.0003669929,0.00038394128,0.00045612478,0.00047884719,0.00091663067,0.0002364377,0.00071812246,0.00012845473],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007215599,0.00010444578,0.0011407753,0.00028158305,0.000037486123,0.0002531058,0.000103945065,0.9452131,0.028973194,0.018103788,0.00028477566,0.0054317876],"study_design_scores_gemma":[0.000018500401,0.00006688307,0.0004082499,0.000011370863,0.000012939254,0.000025410849,0.0000147731325,0.98827934,0.008945557,0.0018376381,0.0003676184,0.000011730773],"about_ca_topic_score_codex":0.0036939883,"about_ca_topic_score_gemma":0.0044682804,"teacher_disagreement_score":0.0036939883,"about_ca_system_score_codex":0.0010540923,"about_ca_system_score_gemma":0.0007029504,"threshold_uncertainty_score":0.007647991},"labels":[],"label_agreement":null},{"id":"W1976356956","doi":"10.1103/physrevb.62.710","title":"Identification of the physical parameters of the paramagnetic phase of the one-dimensional Kondo lattice model done by introducing a nonmagnetic quantum state with rotating order parameters","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Northern British Columbia","funders":"","keywords":"Condensed matter physics; Spins; Physics; Paramagnetism; Phase diagram; Magnetization; Residual entropy; Ferromagnetism; Phase (matter); Quantum mechanics; Magnetic field","score_opus":0.01483010747538736,"score_gpt":0.2726877086350543,"score_spread":0.25785760115966694,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1976356956","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.90896124,0.0012639193,0.06655273,0.0004929899,0.00012661735,0.00006453224,0.0000853425,0.000120558645,0.022332108],"genre_scores_gemma":[0.98602027,0.000397823,0.0123128565,0.000020930725,0.00003509435,0.00005092391,0.000049941384,0.000017441274,0.001094711],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99994504,0.00002065259,0.0000024702865,0.000005944033,0.000015456115,0.0000103260045],"domain_scores_gemma":[0.999705,0.00010895609,0.00008412788,0.00004510425,0.00003493293,0.000021784257],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029070495,0.00044715812,0.00053274876,0.000505026,0.0005454565,0.00075771014,0.0005395699,0.00050391693,0.0013159999],"category_scores_gemma":[0.00086444797,0.00017212507,0.0003673179,0.0002843742,0.0009707577,0.0009979988,0.00038261604,0.00077681657,0.00015538248],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010936943,0.00012790729,0.0018123983,0.00022559876,0.00003279966,0.0003171716,0.00017520958,0.07985882,0.032401275,0.8785133,0.00085664925,0.0055695246],"study_design_scores_gemma":[0.000028333538,0.00010966678,0.0008596839,0.000033778117,0.0000271667,0.00022263813,0.00011933063,0.8178833,0.006643246,0.17293444,0.00110745,0.000030955922],"about_ca_topic_score_codex":0.0004663419,"about_ca_topic_score_gemma":0.0006810773,"teacher_disagreement_score":0.0013159999,"about_ca_system_score_codex":0.000441336,"about_ca_system_score_gemma":0.00033525104,"threshold_uncertainty_score":0.0044025183},"labels":[],"label_agreement":null},{"id":"W1976660663","doi":"10.1103/physrevb.62.r4841","title":"Simulation of an order-disorder transition in monolayer<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">N</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">N</mml:mi><mml:mi mathvariant=\"normal\">a</mml:mi><mml:mi mathvariant=\"normal\">C</mml:mi><mml:mi mathvariant=\"normal\">l</mml:mi><mml:mo>(</mml:mo><mml:mn>001</mml:mn><mml:mo>)</mml:mo><mml:mn/></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"","keywords":"Monolayer; Monte Carlo method; Order (exchange); Phase transition; Physics; Specific heat; Condensed matter physics; Statistical physics; Materials science; Statistics; Mathematics; Nanotechnology","score_opus":0.012158749224124766,"score_gpt":0.24470348549133397,"score_spread":0.2325447362672092,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1976660663","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98793995,0.00024408364,0.0025046607,0.00044873726,0.00006845047,0.00002975845,0.0006823685,0.00017019124,0.007911787],"genre_scores_gemma":[0.994582,0.00017763543,0.0021248574,0.00008461393,0.00000957825,0.000047844776,0.00065091177,0.00004770354,0.0022748103],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998872,0.000012814271,0.000004663182,0.000016898925,0.000027892429,0.000050492166],"domain_scores_gemma":[0.9997762,0.00011125516,0.000014984253,0.000016248647,0.000042090993,0.00003925363],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016026868,0.00026879043,0.0004580801,0.00021525337,0.0008839424,0.0004817303,0.00069419865,0.00069021416,0.008399058],"category_scores_gemma":[0.00042881278,0.00027778136,0.0003791461,0.00040536755,0.00035485625,0.00043994357,0.00029799226,0.0008070909,0.00031801107],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.002484907,0.0010936214,0.009592544,0.000994033,0.00038850695,0.0010923268,0.0010151538,0.7565473,0.15436184,0.041512236,0.0174017,0.013515857],"study_design_scores_gemma":[0.0001304727,0.00044999347,0.0030234193,0.00002487317,0.000039441584,0.000034656765,0.00025798808,0.96823734,0.023641407,0.0020260941,0.0020971554,0.00003707682],"about_ca_topic_score_codex":0.019647626,"about_ca_topic_score_gemma":0.019803315,"teacher_disagreement_score":0.019647626,"about_ca_system_score_codex":0.0009644833,"about_ca_system_score_gemma":0.00070096354,"threshold_uncertainty_score":0.039066553},"labels":[],"label_agreement":null},{"id":"W1977042497","doi":"10.1103/physrevb.68.094412","title":"Statistics of spinons in the spin-liquid phase of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cs</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuCl</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Spinon; Antiferromagnetism; Physics; Spin (aerodynamics); Quantum spin liquid; Condensed matter physics; Anisotropy; Mathematical physics; Quantum mechanics; Thermodynamics; Spin polarization; Electron","score_opus":0.020585619077243142,"score_gpt":0.2698132258882487,"score_spread":0.24922760681100553,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1977042497","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9827849,0.00033326287,0.004929519,0.00095226016,0.00004420912,0.000021129876,0.0016030107,0.00059367344,0.0087380055],"genre_scores_gemma":[0.99594045,0.000074245916,0.00063007284,0.00005427101,0.000036124544,0.0000242228,0.0014418103,0.00011029585,0.0016886357],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9996309,0.00007273002,0.000015164911,0.0000839612,0.00006195162,0.00013528512],"domain_scores_gemma":[0.9949451,0.0024542047,0.0010436708,0.00029807512,0.00050827797,0.0007507936],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010547985,0.0003471156,0.00051469234,0.0014763331,0.00091543584,0.0018827657,0.0011675813,0.0007457827,0.010635493],"category_scores_gemma":[0.0042157983,0.00031358594,0.00037296038,0.0008483782,0.0017286077,0.0017676954,0.0008327878,0.0010746404,0.00073432515],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0034757298,0.00045759292,0.056306005,0.0005533293,0.00027563956,0.0012766477,0.0011812366,0.11739007,0.044172473,0.7016898,0.054668754,0.018552821],"study_design_scores_gemma":[0.00019132513,0.00048568283,0.050615396,0.00010836159,0.00010462129,0.00051483046,0.0005702783,0.7717191,0.031926297,0.13935551,0.0040544244,0.0003542325],"about_ca_topic_score_codex":0.004906907,"about_ca_topic_score_gemma":0.005563595,"teacher_disagreement_score":0.010635493,"about_ca_system_score_codex":0.0014155835,"about_ca_system_score_gemma":0.0007535,"threshold_uncertainty_score":0.035579264},"labels":[],"label_agreement":null},{"id":"W1977263845","doi":"10.1103/physrevb.61.6811","title":"Magnetization reversal dynamics in epitaxial spin-valve structures","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Engineering and Physical Sciences Research Council; Massachusetts Department of Transportation","keywords":"Condensed matter physics; Magnetization; Physics; Energy (signal processing); Epitaxy; Spin valve; Hysteresis; Ferromagnetism; Ferromagnetic resonance; Spin (aerodynamics); Scaling; Materials science; Crystallography; Magnetic field; Nanotechnology; Layer (electronics); Chemistry; Geometry","score_opus":0.005959110913358771,"score_gpt":0.2694549787846161,"score_spread":0.26349586787125734,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1977263845","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995402,0.00005741359,0.00012573728,0.000007136945,0.0000027610029,0.0000011329005,0.000013827334,0.000014845222,0.00023697058],"genre_scores_gemma":[0.99933225,0.000032755386,0.0002162806,0.00000362386,0.0000015693251,0.0000021266894,0.000038089496,0.0000036937452,0.00036969804],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999447,0.0000032156838,0.000003259319,0.000014176211,0.0000141597675,0.000020552925],"domain_scores_gemma":[0.99984765,0.000035319288,0.000046357483,0.000015386828,0.000028288323,0.000026962702],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000057361773,0.00012206979,0.0001223784,0.00012145476,0.00017902644,0.0003645661,0.00025764972,0.00015203057,0.00097344915],"category_scores_gemma":[0.0002997209,0.000117965756,0.00006983487,0.00008371936,0.00018344562,0.00023015185,0.00009081712,0.00022998116,0.000112961745],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008675888,0.00002561794,0.0007003145,0.000018703488,0.000006823152,0.00006846333,0.00005138814,0.00037569625,0.99697316,0.00016362373,0.00003478867,0.001494609],"study_design_scores_gemma":[0.000021720698,0.0001774215,0.004973848,0.0000038902454,0.000011762076,0.000082799444,0.000047735455,0.008082473,0.9859309,0.000055511573,0.000604279,0.000007506508],"about_ca_topic_score_codex":0.0011224486,"about_ca_topic_score_gemma":0.0015586785,"teacher_disagreement_score":0.0011224486,"about_ca_system_score_codex":0.00030275396,"about_ca_system_score_gemma":0.00010686789,"threshold_uncertainty_score":0.0032565594},"labels":[],"label_agreement":null},{"id":"W1977556399","doi":"10.1103/physrevb.67.024425","title":"EPR of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>in a<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">LaCaAlO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>single crystal: Effect of substitutional disorder","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Electron paramagnetic resonance; Physics; Crystallography; Ion; Isostructural; Spectral line; Crystal (programming language); Atomic physics; Condensed matter physics; Crystal structure; Materials science; Nuclear magnetic resonance; Chemistry; Quantum mechanics","score_opus":0.013946776395225225,"score_gpt":0.24000058445752473,"score_spread":0.2260538080622995,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1977556399","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.66966087,0.0021576863,0.03261483,0.00741255,0.0014287458,0.00025160136,0.07343711,0.007405064,0.20563157],"genre_scores_gemma":[0.65444905,0.0023047426,0.025761416,0.0012994613,0.00012625857,0.00026469314,0.094163604,0.0055830088,0.21604781],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99969995,0.000030318624,0.000016107739,0.00005437897,0.00013313544,0.00006623018],"domain_scores_gemma":[0.9996463,0.00007226272,0.000039255043,0.00007186131,0.00012340957,0.00004693086],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036948256,0.0006322234,0.0006289659,0.00046079714,0.0009790438,0.0008626152,0.0015240047,0.00075354957,0.078650914],"category_scores_gemma":[0.0007296775,0.00033331945,0.00022388143,0.0011733236,0.00038100578,0.00081733527,0.00044158872,0.0021115476,0.010321857],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013997419,0.0005271411,0.001514442,0.00090414815,0.00019393231,0.0010082712,0.00054274325,0.001778075,0.6638251,0.009673198,0.28056967,0.038063467],"study_design_scores_gemma":[0.0002866869,0.0004557498,0.011056655,0.000067735804,0.000068901245,0.0006402583,0.00040446376,0.0054106694,0.7893905,0.001086539,0.19100598,0.00012584406],"about_ca_topic_score_codex":0.007725892,"about_ca_topic_score_gemma":0.010890703,"teacher_disagreement_score":0.078650914,"about_ca_system_score_codex":0.0009110529,"about_ca_system_score_gemma":0.00054517895,"threshold_uncertainty_score":0.26311356},"labels":[],"label_agreement":null},{"id":"W1977844097","doi":"10.1103/physrevb.62.2151","title":"Distorted iron films on<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">GaAs</mml:mi><mml:mo>(</mml:mo><mml:mn>001</mml:mn><mml:mo>)</mml:mo><mml:mo>−</mml:mo><mml:mo>(</mml:mo><mml:mn>4</mml:mn><mml:mn/><mml:mo>×</mml:mo><mml:mn>6</mml:mn><mml:mo>)</mml:mo></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":31,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada; Office of Science; U.S. Department of Energy","keywords":"X-ray absorption fine structure; Tetragonal crystal system; Analytical Chemistry (journal); Materials science; Spectral line; Crystallography; Physics; Spectroscopy; Nuclear magnetic resonance; Crystal structure; Chemistry","score_opus":0.014820991824286825,"score_gpt":0.2440503319772787,"score_spread":0.2292293401529919,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1977844097","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9953074,0.00014375844,0.0003727289,0.000057737827,0.000014546017,0.000008142568,0.00037507928,0.0000389158,0.003681559],"genre_scores_gemma":[0.9889419,0.0002645304,0.0015210498,0.00004713203,0.0000062455847,0.000011692784,0.0010119242,0.000060556653,0.00813493],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998888,0.000006238996,0.000004480732,0.000028699405,0.000034452627,0.000037268725],"domain_scores_gemma":[0.9999143,0.000015896285,0.000019500994,0.000010914682,0.000022231578,0.000017087941],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00006608037,0.00027125003,0.00018239026,0.00015919065,0.00034416348,0.0004356839,0.00056065706,0.0002676749,0.005926584],"category_scores_gemma":[0.00016724975,0.00022420933,0.00011890674,0.00021394792,0.0001702043,0.0001642899,0.00015564763,0.0004363311,0.00056552707],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021649554,0.0000299241,0.00073606684,0.00006454465,0.000011275926,0.00020307384,0.00009476741,0.00023867188,0.9964976,0.0002913099,0.00036600177,0.00125037],"study_design_scores_gemma":[0.000017858689,0.00010775059,0.01193887,0.00001347835,0.000013703914,0.00016008693,0.00016815394,0.0018557946,0.9836268,0.000043874028,0.0020455825,0.000008056209],"about_ca_topic_score_codex":0.0068107178,"about_ca_topic_score_gemma":0.010925821,"teacher_disagreement_score":0.0068107178,"about_ca_system_score_codex":0.00077867496,"about_ca_system_score_gemma":0.00022652441,"threshold_uncertainty_score":0.019826412},"labels":[],"label_agreement":null},{"id":"W1978665317","doi":"10.1103/physrevb.61.7669","title":"Coherent control of photocurrents in graphene and carbon nanotubes","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":65,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Graphene; Carbon nanotube; Physics; Condensed matter physics; Electronic band structure; Photocurrent; Excited state; Superposition principle; Band gap; Photon; Polarization (electrochemistry); Asymmetry; Quantum mechanics; Materials science; Nanotechnology; Chemistry","score_opus":0.008000009168602157,"score_gpt":0.27745486942714365,"score_spread":0.2694548602585415,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1978665317","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97294307,0.0011551961,0.018736644,0.0003169315,0.00006921149,0.00002223787,0.00002943144,0.000088482506,0.0066387584],"genre_scores_gemma":[0.9965293,0.00020894331,0.0024396172,0.000016705002,0.000010053027,0.000009797829,0.000012813362,0.000010063405,0.00076265633],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998747,0.000017599034,0.000004824582,0.000020294125,0.00005885397,0.00002375166],"domain_scores_gemma":[0.99972266,0.00015398946,0.000052631454,0.000017785836,0.000029296722,0.00002358534],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016665118,0.00026429555,0.000201189,0.00031638533,0.00030407013,0.0004909381,0.00047472958,0.00041719124,0.0009921702],"category_scores_gemma":[0.0005522881,0.00016463868,0.00017705263,0.0003510249,0.00082277437,0.00057190954,0.00044649962,0.00029868685,0.00008633023],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020125094,0.00016959816,0.0012324335,0.00017308227,0.000052454845,0.0004240045,0.00027523495,0.043544225,0.81670856,0.11695465,0.00037784097,0.019886646],"study_design_scores_gemma":[0.00012105313,0.00019784075,0.0034375372,0.0000252729,0.00003265495,0.00025190404,0.00013264398,0.47022974,0.49039692,0.033212144,0.0018965743,0.00006567693],"about_ca_topic_score_codex":0.00042891948,"about_ca_topic_score_gemma":0.00087657623,"teacher_disagreement_score":0.0009921702,"about_ca_system_score_codex":0.00066043204,"about_ca_system_score_gemma":0.00020952999,"threshold_uncertainty_score":0.004791796},"labels":[],"label_agreement":null},{"id":"W1979200508","doi":"10.1103/physrevb.67.054404","title":"Role of interfaces in the magnetoresistance of Au/Fe/Au/Fe multilayers","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Hungarian Science Foundation; Hungarian Scientific Research Fund; National Science Foundation","keywords":"Condensed matter physics; Magnetoresistance; Giant magnetoresistance; Materials science; Coherent potential approximation; Monolayer; Spin (aerodynamics); Kubo formula; Physics; Electronic structure; Thermodynamics; Conductivity; Quantum mechanics; Nanotechnology; Magnetic field","score_opus":0.010331383145984089,"score_gpt":0.2702539831870656,"score_spread":0.25992260004108153,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1979200508","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9853688,0.001292856,0.010807873,0.000055731336,0.000014382994,0.00001296913,0.00004251887,0.00013538756,0.0022695628],"genre_scores_gemma":[0.99638367,0.0003945323,0.002904723,0.000006294713,0.0000023006346,0.0000054279344,0.000024920206,0.000013797518,0.00026434223],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99993,0.00001565813,0.0000056990557,0.000012941799,0.000022118216,0.000013530836],"domain_scores_gemma":[0.9999089,0.000043710865,0.000015926338,0.00000920385,0.000013826171,0.00000830385],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020195414,0.00042318873,0.00019243582,0.00034731484,0.0002516919,0.0005321428,0.000249228,0.000206967,0.00049015414],"category_scores_gemma":[0.0003765964,0.00019078005,0.00014064927,0.00012778294,0.0003260986,0.00045081595,0.00029020928,0.0002371855,0.000089012996],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000115098344,0.00003238761,0.0014248843,0.00022528287,0.000023937628,0.00030099927,0.00015275212,0.005668004,0.97797,0.006783803,0.00006834157,0.0072346623],"study_design_scores_gemma":[0.000026734204,0.00017644391,0.0062007527,0.00005038275,0.00010041177,0.0003933346,0.00020704557,0.09639797,0.89223987,0.0029038682,0.0012750181,0.000028240393],"about_ca_topic_score_codex":0.00056177424,"about_ca_topic_score_gemma":0.00072929997,"teacher_disagreement_score":0.00056177424,"about_ca_system_score_codex":0.00017032378,"about_ca_system_score_gemma":0.00013192481,"threshold_uncertainty_score":0.0016397238},"labels":[],"label_agreement":null},{"id":"W1979281311","doi":"10.1103/physrevb.64.220501","title":"Universal thermal conductivity in the vortex state of cuprate superconductors","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Condensed matter physics; Superconductivity; Vortex; Vortex state; Hamiltonian (control theory); Physics; Thermal conductivity; Cuprate; Meissner effect; Effective mass (spring–mass system); Quantum mechanics; Mathematics; Mechanics","score_opus":0.01699440114151692,"score_gpt":0.2854996920868945,"score_spread":0.2685052909453776,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1979281311","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9062002,0.0033419218,0.073097706,0.00055887934,0.00018940508,0.00003502399,0.00007946948,0.00022507,0.016272446],"genre_scores_gemma":[0.9934708,0.0005602688,0.0045648967,0.000049228973,0.00006829808,0.00002373573,0.000029661744,0.000033311386,0.0011998279],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99986684,0.000042520594,0.000010872247,0.000019286292,0.000031304262,0.000029173745],"domain_scores_gemma":[0.99982953,0.00004605322,0.000032797696,0.000028325929,0.000033467517,0.000029818988],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038842793,0.00046064323,0.00047858575,0.00067842903,0.00052498,0.0011978392,0.00042704464,0.0005117723,0.00057262136],"category_scores_gemma":[0.00094271975,0.00026844343,0.00036211594,0.00024665438,0.0019251389,0.0013230602,0.0006694366,0.00043031463,0.00013369483],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000078290825,0.000060733677,0.0009573506,0.00015760765,0.000023625293,0.0004288987,0.00028920226,0.033576623,0.03201433,0.92820376,0.00068092515,0.0035286671],"study_design_scores_gemma":[0.00005675173,0.00010570957,0.0011085904,0.00007447989,0.000038037957,0.00053398527,0.0001512723,0.35640568,0.010885489,0.62898904,0.0015834745,0.00006742502],"about_ca_topic_score_codex":0.0004051464,"about_ca_topic_score_gemma":0.0005433443,"teacher_disagreement_score":0.0011978392,"about_ca_system_score_codex":0.0003936257,"about_ca_system_score_gemma":0.00037104057,"threshold_uncertainty_score":0.0028560162},"labels":[],"label_agreement":null},{"id":"W1979946689","doi":"10.1103/physrevb.65.104402","title":"Dynamics in fine particle magnets","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced NMR Techniques and Applications","field":"Chemistry","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Superparamagnetism; Condensed matter physics; Excitation; Magnet; Relaxation (psychology); Spectroscopy; Muon spin spectroscopy; Magnetic field; Physics; Particle (ecology); Spin (aerodynamics); Spectral line; Dynamics (music); Materials science; Magnetization; Quantum mechanics; Superconductivity","score_opus":0.017887463979723784,"score_gpt":0.3124689310293195,"score_spread":0.2945814670495957,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1979946689","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9500795,0.002767532,0.028560603,0.0006526693,0.00015837683,0.000030861916,0.00013885222,0.00029841694,0.017313281],"genre_scores_gemma":[0.9909738,0.000626234,0.004154318,0.00007834246,0.000026191457,0.000016566737,0.00009749235,0.000021817723,0.004005236],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99993634,0.000007893834,0.0000015634629,0.000022044607,0.000014039412,0.000018127781],"domain_scores_gemma":[0.9998704,0.00004183068,0.000027574448,0.000015555646,0.000016513733,0.000028022416],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014152385,0.00012644214,0.00021708859,0.00031484262,0.00057199213,0.0005910931,0.00022426428,0.00045284952,0.0018107435],"category_scores_gemma":[0.0005066284,0.0001486891,0.00012378466,0.000145221,0.0005554339,0.000700057,0.0003584206,0.0003731759,0.00026589772],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002830438,0.00014492517,0.0046105273,0.0003290048,0.00005470794,0.00075508724,0.000902678,0.041353624,0.6396178,0.25592157,0.0038326206,0.052194458],"study_design_scores_gemma":[0.00015929196,0.0009512788,0.027245523,0.00008913188,0.000056291967,0.0019337949,0.0004688397,0.49292973,0.20912316,0.20585932,0.061019428,0.00016418206],"about_ca_topic_score_codex":0.0006939982,"about_ca_topic_score_gemma":0.000612971,"teacher_disagreement_score":0.0018107435,"about_ca_system_score_codex":0.0004420636,"about_ca_system_score_gemma":0.00016973593,"threshold_uncertainty_score":0.006057501},"labels":[],"label_agreement":null},{"id":"W1980229162","doi":"10.1103/physrevb.61.5381","title":"Quantum kinetic theory of two-beam current injection in bulk semiconductors","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":26,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Physics; Excitation; Atomic physics; Boltzmann constant; Condensed matter physics; Omega; Phonon; Semiconductor; Electron; Quantum mechanics","score_opus":0.012811978919307323,"score_gpt":0.2871033781958483,"score_spread":0.274291399276541,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1980229162","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.07117237,0.0062351194,0.7946587,0.0038894871,0.00077078,0.0001686057,0.0002621607,0.00035198015,0.122490846],"genre_scores_gemma":[0.8636169,0.0051898533,0.0794764,0.00089175475,0.0006241439,0.0004642798,0.00015976164,0.00018507382,0.049391773],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997136,0.000067906345,0.000012242677,0.00002781335,0.00013205016,0.000046312565],"domain_scores_gemma":[0.99977404,0.00008775979,0.000020986516,0.000027470482,0.000064232096,0.000025559533],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00062807003,0.0005471217,0.0007085162,0.0007488756,0.0007596626,0.0012614237,0.0014479293,0.0013516581,0.0029903187],"category_scores_gemma":[0.000664503,0.00039618733,0.0006236016,0.00054039265,0.002028664,0.0017507285,0.000621876,0.0010983063,0.0006797771],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000006770351,0.000014516645,0.000049136113,0.000026191909,0.0000045141396,0.0000691819,0.000048521484,0.029607654,0.0012362341,0.96740144,0.00049233844,0.001043359],"study_design_scores_gemma":[0.000019847943,0.000028881286,0.000114380426,0.000017044038,0.000006173789,0.00008944774,0.000018834033,0.37013662,0.0006363935,0.6256382,0.0032716256,0.000022679213],"about_ca_topic_score_codex":0.0020340986,"about_ca_topic_score_gemma":0.0013109515,"teacher_disagreement_score":0.0029903187,"about_ca_system_score_codex":0.002082711,"about_ca_system_score_gemma":0.0011392571,"threshold_uncertainty_score":0.015111148},"labels":[],"label_agreement":null},{"id":"W1980712218","doi":"10.1103/physrevb.64.144418","title":"Bias-field dependence of the spatiotemporal evolution of magnetization reversal in a mesoscopic<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ni</mml:mi></mml:mrow><mml:mrow><mml:mn>80</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>20</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>element","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Magnetization; Mesoscopic physics; Condensed matter physics; Nucleation; Field (mathematics); Biasing; Physics; Domain wall (magnetism); Materials science; Magnetic field; Thermodynamics; Quantum mechanics; Voltage; Mathematics","score_opus":0.016283899559891814,"score_gpt":0.24514622305544131,"score_spread":0.2288623234955495,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1980712218","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9944178,0.0002989138,0.0013050074,0.00013959274,0.000025802125,0.000009239491,0.0003037192,0.00010828036,0.003391627],"genre_scores_gemma":[0.9965101,0.0002830763,0.0010222007,0.00003259166,0.00000761855,0.000012293424,0.0001885925,0.00002643328,0.001917215],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99996424,0.0000020739503,0.0000017902286,0.000011328068,0.0000091843585,0.000011355215],"domain_scores_gemma":[0.999851,0.00004649543,0.000036608035,0.000015734639,0.000031346368,0.000018761251],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000083977706,0.00012892755,0.00012835188,0.00012738159,0.0002298332,0.0003647853,0.00037602155,0.00022016214,0.0031047151],"category_scores_gemma":[0.00024692333,0.00015334481,0.00008109583,0.00016102754,0.00026233934,0.00024745832,0.00012900379,0.00041389983,0.00041665017],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009974181,0.000040927516,0.00054880936,0.00005455355,0.000008208901,0.00012641896,0.000093577044,0.00035748375,0.99458486,0.00070622383,0.00044877885,0.0029305168],"study_design_scores_gemma":[0.000026888963,0.00017321418,0.012161482,0.000014319338,0.000013142431,0.00012571183,0.00012877405,0.009592839,0.9752076,0.00018734368,0.0023533124,0.000015459833],"about_ca_topic_score_codex":0.0025406326,"about_ca_topic_score_gemma":0.0044099293,"teacher_disagreement_score":0.0031047151,"about_ca_system_score_codex":0.0005058853,"about_ca_system_score_gemma":0.00021866696,"threshold_uncertainty_score":0.010386288},"labels":[],"label_agreement":null},{"id":"W1981202077","doi":"10.1103/physrevb.67.214509","title":"Phonon attenuation and quasiparticle–phonon energy transfer in<i>d</i>-wave superconductors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Quasiparticle; Phonon; Condensed matter physics; Superconductivity; Physics; Anisotropy; Scattering rate; Momentum transfer; Cuprate; Scattering; Quantum mechanics","score_opus":0.017921039963497965,"score_gpt":0.26110731994010816,"score_spread":0.2431862799766102,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1981202077","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99190813,0.00022861395,0.005355887,0.00003768533,0.000007825859,0.000009893943,0.0000410127,0.000055857006,0.00235512],"genre_scores_gemma":[0.99840015,0.00012243635,0.0011054733,0.000004271769,0.0000031776171,0.000007880159,0.000036678324,0.000010781958,0.00030924255],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99991715,0.000016960685,0.0000063631824,0.000011660045,0.000027298198,0.000020586533],"domain_scores_gemma":[0.99956757,0.00018840362,0.00012276774,0.000040594266,0.000055007964,0.000025700458],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026098892,0.00043561312,0.00021678286,0.00065878377,0.0002485946,0.0003769238,0.0005261352,0.00027488993,0.0007355879],"category_scores_gemma":[0.0010601731,0.0001914826,0.00023455612,0.00042389994,0.0004493463,0.00040245664,0.0002668768,0.00022971336,0.00020147389],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00059289206,0.0003764542,0.052028585,0.0005591537,0.00014872852,0.0006348458,0.0005722903,0.5883964,0.2648175,0.059193365,0.0010702277,0.031609554],"study_design_scores_gemma":[0.00003970244,0.00012028507,0.009436685,0.000016990105,0.000030313535,0.00013476338,0.00007311978,0.90566176,0.07931598,0.004294772,0.0008416489,0.000034015924],"about_ca_topic_score_codex":0.0025120894,"about_ca_topic_score_gemma":0.0017165869,"teacher_disagreement_score":0.0025120894,"about_ca_system_score_codex":0.00064042164,"about_ca_system_score_gemma":0.00017191855,"threshold_uncertainty_score":0.004994929},"labels":[],"label_agreement":null},{"id":"W1982844900","doi":"10.1103/physrevb.67.113312","title":"Current-voltage characteristics and magnetic moment of a tunnel-coupled double-wire structure","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"D-Wave Systems (Canada)","funders":"","keywords":"Diamagnetism; Condensed matter physics; Voltage drop; Paramagnetism; Magnetic field; Magnetic moment; Biasing; Voltage; Materials science; Perpendicular; Moment (physics); Physics; Drop (telecommunication); Electric potential; Classical mechanics; Electrical engineering; Quantum mechanics","score_opus":0.008844343078961817,"score_gpt":0.26210192153954937,"score_spread":0.25325757846058755,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1982844900","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.993822,0.00008390763,0.0045781466,0.000034327553,0.0000060156563,0.000008782302,0.000024352976,0.000053896252,0.0013884765],"genre_scores_gemma":[0.9985624,0.00003349629,0.0010324874,0.0000039188835,0.000003458864,0.000004082945,0.000016978656,0.0000031388372,0.0003400576],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999467,0.000009469339,0.0000022860643,0.000014112261,0.000017409673,0.0000100518355],"domain_scores_gemma":[0.99967384,0.000108260916,0.0000652181,0.00003554371,0.00006750198,0.000049746362],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000116282135,0.00019147128,0.0003373554,0.0003210929,0.00022077723,0.00034213637,0.00048824208,0.00036522892,0.00078803714],"category_scores_gemma":[0.00056092325,0.00013547944,0.00014758098,0.0003044269,0.00039128162,0.00037622196,0.00019892993,0.00019926346,0.00017165286],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00085994083,0.00027646247,0.0043966514,0.00023003743,0.000103496306,0.0014192857,0.0004499784,0.12178582,0.83927304,0.02162878,0.00040747644,0.009169151],"study_design_scores_gemma":[0.000047197704,0.00044429503,0.002355703,0.000012838913,0.000043637254,0.0003179506,0.000063808264,0.9313891,0.06080065,0.0039313724,0.00057375274,0.00001969263],"about_ca_topic_score_codex":0.00045159573,"about_ca_topic_score_gemma":0.00039817643,"teacher_disagreement_score":0.00078803714,"about_ca_system_score_codex":0.00026984295,"about_ca_system_score_gemma":0.00013772816,"threshold_uncertainty_score":0.0026362538},"labels":[],"label_agreement":null},{"id":"W1983236357","doi":"10.1103/physrevb.64.155401","title":"Formation of Ni-graphite intercalation compounds on SiC","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Silicon Carbide Semiconductor Technologies","field":"Engineering","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Norges Forskningsråd; Stiftelsen för Strategisk Forskning; Stiftelsen för Strategisk Forskning","keywords":"Scanning tunneling microscope; Auger electron spectroscopy; Materials science; Crystallography; Graphite; Intercalation (chemistry); Substrate (aquarium); Scanning electron microscope; Analytical Chemistry (journal); Nanotechnology; Physics; Chemistry; Metallurgy","score_opus":0.018618637892449635,"score_gpt":0.27669523852395056,"score_spread":0.25807660063150095,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1983236357","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9980094,0.00028600657,0.00028211967,0.000009151956,0.0000066454836,0.00000932049,0.0000788276,0.000032074728,0.0012864687],"genre_scores_gemma":[0.9980008,0.00011522564,0.000979346,0.000010578938,0.0000026711164,0.0000058233927,0.00022315184,0.0000075698126,0.00065492967],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99989855,0.0000072871526,0.0000053126714,0.000019718293,0.000047177833,0.000021911459],"domain_scores_gemma":[0.99989593,0.000012233249,0.000020506424,0.000018699948,0.00003138717,0.000021239082],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000057067416,0.00018695397,0.0001853595,0.00026909608,0.00027722205,0.00031427524,0.0002570525,0.0002502025,0.00080974237],"category_scores_gemma":[0.00013834362,0.00015013631,0.0001420231,0.00017726548,0.0001717498,0.00011954134,0.0002159554,0.00022046358,0.0001749654],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000039363964,0.000007017642,0.0008008933,0.00004351463,0.0000066920675,0.00015242526,0.00003232354,0.00005901678,0.99717295,0.00006556467,0.000038276736,0.0015820793],"study_design_scores_gemma":[0.00000786592,0.0001567954,0.012813907,0.0000064783076,0.000013271509,0.0003240416,0.000036514633,0.0010274267,0.98412365,0.000020050029,0.0014631157,0.000006840747],"about_ca_topic_score_codex":0.0010128639,"about_ca_topic_score_gemma":0.0021410508,"teacher_disagreement_score":0.0010128639,"about_ca_system_score_codex":0.00018149699,"about_ca_system_score_gemma":0.00012684862,"threshold_uncertainty_score":0.0027087927},"labels":[],"label_agreement":null},{"id":"W1983289274","doi":"10.1103/physrevb.66.165433","title":"Role of Umklapp processes in the conductivity of doped two-leg ladders","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Electrical resistivity and conductivity; Condensed matter physics; Conductivity; Doping; Power law; Physics; Work (physics); Materials science; Optical conductivity; Quantum mechanics; Mathematics","score_opus":0.020954359709884317,"score_gpt":0.28607130716165763,"score_spread":0.26511694745177333,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1983289274","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.961341,0.00094010413,0.024212655,0.00034228546,0.000071192,0.000040904742,0.00006630914,0.0004118868,0.012573603],"genre_scores_gemma":[0.99704164,0.00019229384,0.0019035821,0.000047551923,0.00000660097,0.000015777638,0.000020361427,0.000019199908,0.00075293623],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997025,0.000082057944,0.0000219807,0.0000374264,0.00007332276,0.00008273932],"domain_scores_gemma":[0.9991541,0.00040186377,0.00010759566,0.00017773613,0.00007005404,0.000088749024],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00075558596,0.0005456515,0.0004243317,0.0014337929,0.0012448801,0.002155295,0.00088648335,0.00091135106,0.0024364023],"category_scores_gemma":[0.0023656557,0.0003839903,0.00038242366,0.0006390629,0.0016843195,0.0018624,0.0010760158,0.00073691324,0.00029914852],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00082113326,0.0007412215,0.0073547643,0.0005675776,0.00008562311,0.0032048584,0.0013805025,0.043010466,0.2779775,0.63509184,0.0008346933,0.028929811],"study_design_scores_gemma":[0.00014822576,0.00043953376,0.00751071,0.00017797171,0.000064969376,0.001563148,0.00053174305,0.48595503,0.17020644,0.33046466,0.0027608536,0.00017681032],"about_ca_topic_score_codex":0.00037953706,"about_ca_topic_score_gemma":0.0008129222,"teacher_disagreement_score":0.0024364023,"about_ca_system_score_codex":0.0007211912,"about_ca_system_score_gemma":0.00031993844,"threshold_uncertainty_score":0.008150578},"labels":[],"label_agreement":null},{"id":"W1983690831","doi":"10.1103/physrevb.65.235426","title":"Single charge effects in STM tunneling characteristics in air","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Scanning tunneling microscope; Quantum tunnelling; Scanning tunneling spectroscopy; Materials science; Trapping; Spin polarized scanning tunneling microscopy; Electrochemical scanning tunneling microscope; Conductive atomic force microscopy; Charge (physics); Atomic force microscopy; Nanotechnology; Molecular physics; Condensed matter physics; Atomic physics; Optoelectronics; Chemistry; Physics","score_opus":0.00873163962173483,"score_gpt":0.22875156139369895,"score_spread":0.2200199217719641,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1983690831","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9879261,0.0012591203,0.008264352,0.000089167275,0.0000671934,0.000027014652,0.00009521017,0.0002092283,0.002062677],"genre_scores_gemma":[0.99665135,0.00018062103,0.002576749,0.00002872431,0.000010038277,0.000009957605,0.00004388363,0.000019620958,0.00047915644],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99956554,0.00005819436,0.000025358047,0.00007852182,0.00019522445,0.00007717188],"domain_scores_gemma":[0.99771667,0.0014102049,0.00014174136,0.00016747964,0.00044573005,0.00011812344],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000798956,0.00034674103,0.00039644967,0.00044563474,0.00030291363,0.0005000896,0.0005884655,0.0006714406,0.0030029367],"category_scores_gemma":[0.002761826,0.00023510444,0.0001732918,0.00031227266,0.00040851193,0.0009819673,0.00052506785,0.00069440075,0.00038801783],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00033651842,0.00006104668,0.0027477206,0.00019865288,0.00001746473,0.00065292185,0.00045710974,0.00059993874,0.9782064,0.0013119221,0.00019126211,0.015219049],"study_design_scores_gemma":[0.00005211494,0.0008166754,0.009628324,0.00004337953,0.00005487055,0.0018363864,0.00023659169,0.016172951,0.96816146,0.0010457966,0.0019191444,0.000032251904],"about_ca_topic_score_codex":0.00028164283,"about_ca_topic_score_gemma":0.00032103993,"teacher_disagreement_score":0.0030029367,"about_ca_system_score_codex":0.00021752059,"about_ca_system_score_gemma":0.00013379304,"threshold_uncertainty_score":0.010045826},"labels":[],"label_agreement":null},{"id":"W1984107726","doi":"10.1103/physrevb.64.134111","title":"Ordering and segregation in<i>X</i>Pt (<i>X</i>=V, Cu, and Au) random alloys","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brock University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Relativistic quantum chemistry; Physics; Ternary operation; Lattice (music); Condensed matter physics; Alloy; Coherent potential approximation; Atomic orbital; Electronic structure; Ground state; Quantum mechanics; Materials science; Electron","score_opus":0.009862070091514097,"score_gpt":0.2850634003923893,"score_spread":0.27520133030087524,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1984107726","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9962592,0.00013504911,0.002471111,0.00002498043,0.0000044680237,0.000005170399,0.00002950536,0.0000360786,0.0010344108],"genre_scores_gemma":[0.9975132,0.000050219223,0.0021105784,0.0000059626027,0.0000019304014,0.000006114215,0.000035998728,0.000008769048,0.00026713777],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999099,0.000025657333,0.0000060272655,0.000011733481,0.000030395351,0.000016302913],"domain_scores_gemma":[0.99987924,0.0000421073,0.000028247136,0.000014284295,0.000026028165,0.000010113677],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014211697,0.00017693063,0.0001913791,0.0005936366,0.0002777782,0.00034868254,0.0003615697,0.00021959358,0.0004709312],"category_scores_gemma":[0.00039430862,0.00013655437,0.000117463336,0.0003209362,0.00033350158,0.00014147461,0.00015069006,0.00011743332,0.000075771764],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00073211605,0.00012403245,0.016495602,0.00040092075,0.00012171049,0.0012647328,0.00048543257,0.40966865,0.5030715,0.036745932,0.00095641,0.029933091],"study_design_scores_gemma":[0.00003095162,0.00022159218,0.007517698,0.000012170358,0.000038441747,0.00025238292,0.00010612255,0.8714324,0.11484495,0.0047623576,0.00075531664,0.000025609923],"about_ca_topic_score_codex":0.0019038046,"about_ca_topic_score_gemma":0.0017545543,"teacher_disagreement_score":0.0019038046,"about_ca_system_score_codex":0.00027362094,"about_ca_system_score_gemma":0.00017718198,"threshold_uncertainty_score":0.003785491},"labels":[],"label_agreement":null},{"id":"W1985252301","doi":"10.1103/physrevb.65.165401","title":"Density-functional method for nonequilibrium electron transport","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":5765,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"European Social Fund; Natural Sciences and Engineering Research Council of Canada; Generalitat de Catalunya; European Commission","keywords":"Density functional theory; Ab initio; Non-equilibrium thermodynamics; Electronic structure; Electron; Atomic orbital; Physics; Atom (system on chip); Ab initio quantum chemistry methods; Atomic physics; Condensed matter physics; Quantum mechanics; Computer science; Molecule","score_opus":0.011673551321618684,"score_gpt":0.26222564251085306,"score_spread":0.2505520911892344,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1985252301","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0024398256,0.0020911728,0.97540104,0.0005399582,0.00037627923,0.0003042785,0.0007427896,0.0007554207,0.017349226],"genre_scores_gemma":[0.0744296,0.0024245894,0.8960949,0.00051199686,0.00022849742,0.0032340547,0.0014679368,0.001048366,0.02056002],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9995266,0.00020570928,0.00001779314,0.000029627432,0.00017972612,0.000040639585],"domain_scores_gemma":[0.99948657,0.0002062778,0.000020574646,0.00010072303,0.00014756217,0.000038248276],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012969762,0.0011831975,0.0015526687,0.001244151,0.0009658686,0.00093407265,0.0025498243,0.0015700662,0.010096533],"category_scores_gemma":[0.001392573,0.00043148609,0.0011248126,0.0013389916,0.00075414724,0.0009244349,0.0011944814,0.0017076178,0.003928449],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000055475473,0.00011543066,0.00032970525,0.00056168786,0.00018627636,0.0003923929,0.00013286494,0.30611837,0.0021171533,0.6048005,0.016425539,0.06876453],"study_design_scores_gemma":[0.000043689437,0.00001622723,0.00009622439,0.0000494284,0.000017539112,0.000060698552,0.000015326566,0.879663,0.00036961408,0.09503193,0.024609651,0.000026731432],"about_ca_topic_score_codex":0.0066733174,"about_ca_topic_score_gemma":0.0063734557,"teacher_disagreement_score":0.010096533,"about_ca_system_score_codex":0.0012219307,"about_ca_system_score_gemma":0.0020009256,"threshold_uncertainty_score":0.033776224},"labels":[],"label_agreement":null},{"id":"W1985605081","doi":"10.1103/physrevb.61.11197","title":"Crossover from classical to random-field critical exponents in As-doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">TbVO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Ising model; Critical exponent; Field (mathematics); Physics; Random field; Crossover; Realization (probability); Condensed matter physics; Statistical physics; Combinatorics; Mathematics; Mathematical physics; Phase transition; Statistics; Computer science; Machine learning; Pure mathematics","score_opus":0.01294224258479617,"score_gpt":0.26308585925068767,"score_spread":0.2501436166658915,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1985605081","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99714833,0.00025193504,0.00041810496,0.00009068926,0.000026110236,0.0000050160725,0.00016536079,0.000058586564,0.0018359402],"genre_scores_gemma":[0.9985057,0.000109166016,0.00035798253,0.000014228274,0.000005056549,0.000008596936,0.00008967274,0.000020692956,0.0008889175],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99985325,0.000013343228,0.000008056829,0.00003219374,0.000037183127,0.000055865774],"domain_scores_gemma":[0.99958295,0.00012507982,0.0000726036,0.000035755198,0.00010999029,0.00007361792],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019840068,0.00022220207,0.00029757264,0.00056597433,0.0003850286,0.0007350907,0.00046194435,0.00038073235,0.003334732],"category_scores_gemma":[0.00079463003,0.00020607478,0.00014312183,0.00031870307,0.0006616899,0.00044210616,0.00025037143,0.0006316289,0.00028620719],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00069825945,0.00015282234,0.002294622,0.00020511412,0.000052829146,0.0002556704,0.00045842,0.0029280237,0.97972476,0.008131092,0.0012585919,0.003839887],"study_design_scores_gemma":[0.00006294192,0.00040120332,0.009694983,0.00008410825,0.000032778866,0.000106393796,0.00036582255,0.03131706,0.95345885,0.0021614418,0.0022552658,0.00005914504],"about_ca_topic_score_codex":0.0032084452,"about_ca_topic_score_gemma":0.0057352963,"teacher_disagreement_score":0.003334732,"about_ca_system_score_codex":0.0006447432,"about_ca_system_score_gemma":0.0003415885,"threshold_uncertainty_score":0.011155784},"labels":[],"label_agreement":null},{"id":"W1985610935","doi":"10.1103/physrevb.67.153202","title":"Isotherms for the liquid-gas phase transition in silicon from NPT Monte Carlo simulations","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"Natural Sciences and Engineering Research Council of Canada; Fonds Québécois de la Recherche sur la Nature et les Technologies","keywords":"Spinodal; Monte Carlo method; Physics; Silicon; Atom (system on chip); Phase transition; Isothermal process; Thermodynamics; Phase (matter); Condensed matter physics; Statistical physics; Quantum mechanics","score_opus":0.018228757866460638,"score_gpt":0.29230952116340164,"score_spread":0.274080763296941,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1985610935","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.77957124,0.00065460446,0.17528316,0.00043574837,0.0000676233,0.00024774906,0.0031051636,0.0012259481,0.039408695],"genre_scores_gemma":[0.96433806,0.0005244632,0.030585011,0.000051998413,0.000014965649,0.00032069793,0.0016467131,0.0002473536,0.0022707751],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99979943,0.000026070727,0.000009944866,0.000020829111,0.000115878676,0.000027987524],"domain_scores_gemma":[0.9994592,0.00026884957,0.000037976955,0.000043830052,0.00015824352,0.000031922093],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00059920625,0.00030660213,0.00038982992,0.0012018719,0.0006702464,0.0004545561,0.00083350827,0.00049503625,0.0044145416],"category_scores_gemma":[0.0017849148,0.00025604037,0.000399559,0.001089059,0.00046926405,0.0007547688,0.00026326443,0.00069118076,0.00037521194],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000105166255,0.000058814738,0.0016466435,0.00017216691,0.000025807862,0.00013082437,0.00016317496,0.92604864,0.017936757,0.042065322,0.0014275772,0.010219238],"study_design_scores_gemma":[0.00001495752,0.000018198138,0.00094269257,0.000015247775,0.0000074956006,0.000018296108,0.000021838265,0.98620194,0.006097232,0.005821124,0.00082614814,0.000014796109],"about_ca_topic_score_codex":0.0076924325,"about_ca_topic_score_gemma":0.009307264,"teacher_disagreement_score":0.0076924325,"about_ca_system_score_codex":0.0016839982,"about_ca_system_score_gemma":0.0010359555,"threshold_uncertainty_score":0.015295327},"labels":[],"label_agreement":null},{"id":"W1986133755","doi":"10.1103/physrevb.61.13969","title":"Test of the Ardell distribution function for two-dimensional adsorbate islands using thermal desorption spectroscopy","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"nanoparticles nucleation surface interactions","field":"Earth and Planetary Sciences","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Trent University","funders":"Natural Sciences and Engineering Research Council of Canada; Trent University","keywords":"Desorption; RADIUS; Thermal desorption; Work (physics); Standard deviation; Distribution function; Thermal; Curve fitting; Thermal desorption spectroscopy; Materials science; Distribution (mathematics); Function (biology); Thermodynamics; Analytical Chemistry (journal); Physics; Chemistry; Statistics; Mathematics; Mathematical analysis; Adsorption; Physical chemistry","score_opus":0.01584312756756111,"score_gpt":0.28071129731002725,"score_spread":0.26486816974246613,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986133755","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8494665,0.00068917696,0.14511444,0.000322687,0.000040319275,0.00012811973,0.00029154873,0.0006688867,0.0032782874],"genre_scores_gemma":[0.9838673,0.00015869249,0.015075643,0.000059965445,0.000008991681,0.00008969154,0.00017457342,0.000082018334,0.00048308074],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99842393,0.00036244738,0.000072122006,0.00035485782,0.0006439927,0.00014265825],"domain_scores_gemma":[0.98716533,0.009330543,0.00084310333,0.0012492731,0.0012160701,0.0001957734],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0039471556,0.00046489143,0.0006947413,0.0016918129,0.0005426596,0.0007861565,0.0017653871,0.00126285,0.0008778429],"category_scores_gemma":[0.01745797,0.00044596006,0.00061522174,0.00069841236,0.0009855345,0.0016785637,0.000724851,0.00075896725,0.00052977685],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0033808805,0.0015488344,0.081282325,0.0008916476,0.00037636532,0.0015315186,0.0015281513,0.32070783,0.44171074,0.05624809,0.0025500443,0.08824354],"study_design_scores_gemma":[0.000055855966,0.00045261395,0.008330991,0.00001622458,0.00001422019,0.00033917034,0.00010519349,0.88499916,0.10125046,0.0036484492,0.00071368006,0.00007395819],"about_ca_topic_score_codex":0.0032831358,"about_ca_topic_score_gemma":0.0010488124,"teacher_disagreement_score":0.0039471556,"about_ca_system_score_codex":0.001358817,"about_ca_system_score_gemma":0.0006125584,"threshold_uncertainty_score":0.020874798},"labels":[],"label_agreement":null},{"id":"W1986245132","doi":"10.1103/physrevb.67.165202","title":"Electrical and optical properties of carbon-doped GaSb","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":26,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Acceptor; Impurity; Photoluminescence; Materials science; Doping; Hall effect; Carbon fibers; Analytical Chemistry (journal); Electron mobility; Activation energy; Shallow donor; Condensed matter physics; Electrical resistivity and conductivity; Optoelectronics; Physical chemistry; Chemistry; Physics","score_opus":0.01547222216871096,"score_gpt":0.27176765796561475,"score_spread":0.2562954357969038,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986245132","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9982198,0.00034350422,0.0003685018,0.00003258508,0.000005558321,0.0000024483463,0.00019432176,0.000021116019,0.00081199274],"genre_scores_gemma":[0.99807847,0.00012531369,0.00054607005,0.000015263637,0.0000029522769,0.0000045561305,0.000323802,0.0000114986115,0.0008921126],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990237,0.000008053606,0.000003830937,0.000022915365,0.000043683533,0.0000192221],"domain_scores_gemma":[0.9998161,0.00004216186,0.00002775086,0.000015829195,0.00007253712,0.000025508985],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009455426,0.00022510922,0.00015331426,0.0002894008,0.00021948935,0.00034606503,0.00024367994,0.00028035394,0.0011458893],"category_scores_gemma":[0.00030124813,0.00010741899,0.000074210155,0.00030422988,0.00017823612,0.00021737732,0.00012790252,0.00012391491,0.00020684152],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000102902784,0.000010698069,0.0018665133,0.000030466026,0.0000067805368,0.0000679173,0.0000318438,0.00035171228,0.9961648,0.00009868921,0.000046504163,0.0012211492],"study_design_scores_gemma":[0.00001822262,0.00031655084,0.03125952,0.000019634695,0.000020117483,0.00023693104,0.00012020508,0.006793275,0.9585195,0.00013801639,0.0025349343,0.000023122642],"about_ca_topic_score_codex":0.002486635,"about_ca_topic_score_gemma":0.003060916,"teacher_disagreement_score":0.002486635,"about_ca_system_score_codex":0.00030801079,"about_ca_system_score_gemma":0.000085762505,"threshold_uncertainty_score":0.0049443245},"labels":[],"label_agreement":null},{"id":"W1986428020","doi":"10.1103/physrevb.66.085306","title":"Probing spin states of coupled quantum dots by a dc Josephson current","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Josephson effect; Quantum dot; Pi Josephson junction; Condensed matter physics; Physics; Current (fluid); Spin (aerodynamics); Josephson energy; Spin current; Quantum mechanics; Superconductivity; Magnetic field; Magnetization","score_opus":0.013814995964264663,"score_gpt":0.2818241448773342,"score_spread":0.26800914891306954,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986428020","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.927917,0.0011416506,0.06141276,0.0005323633,0.00009877152,0.000055144443,0.00005860731,0.00013487623,0.008648815],"genre_scores_gemma":[0.98983544,0.0003179812,0.008914072,0.00009118868,0.000019681647,0.000017214707,0.000013785338,0.0000059878976,0.00078463246],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99988973,0.000017551276,0.000004643632,0.00003742373,0.000037996033,0.000012618368],"domain_scores_gemma":[0.99981874,0.00008420826,0.000026436423,0.000026770018,0.000022667718,0.00002120583],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000244068,0.00018544277,0.00020271522,0.00029049494,0.0002476599,0.00044765623,0.00050047325,0.0004141248,0.00077208783],"category_scores_gemma":[0.00046882787,0.00014347819,0.0001438829,0.00022558858,0.00089822896,0.0006487614,0.00032214308,0.00048694163,0.00009551414],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000081323786,0.00007963289,0.0012210715,0.00009945781,0.000020618387,0.00015655805,0.0001251342,0.0022030051,0.94015014,0.044666663,0.00016305581,0.011033202],"study_design_scores_gemma":[0.00008026782,0.00046151006,0.0027559835,0.000022800357,0.000058397196,0.000524929,0.00012247087,0.1281112,0.8309872,0.031143308,0.005683905,0.00004798636],"about_ca_topic_score_codex":0.00030868867,"about_ca_topic_score_gemma":0.00043785857,"teacher_disagreement_score":0.00077208783,"about_ca_system_score_codex":0.00030701456,"about_ca_system_score_gemma":0.00010474804,"threshold_uncertainty_score":0.0025829077},"labels":[],"label_agreement":null},{"id":"W1986491929","doi":"10.1103/physrevb.64.033414","title":"Broken symmetry, boundary conditions, and band-gap oscillations in finite single-wall carbon nanotubes","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Zigzag; Carbon nanotube; Maxima; Condensed matter physics; Symmetry (geometry); Band gap; Boundary (topology); Amplitude; Materials science; Boundary value problem; Periodic boundary conditions; Chiral symmetry; Physics; Nanotechnology; Quantum mechanics; Geometry; Mathematics; Mathematical analysis","score_opus":0.020972998940324703,"score_gpt":0.2971080657876275,"score_spread":0.27613506684730277,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986491929","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9625972,0.005295612,0.020954771,0.0005992862,0.00014418742,0.0000107825235,0.000055650624,0.00009296681,0.010249358],"genre_scores_gemma":[0.9970125,0.0008727767,0.001516707,0.000031007177,0.00002564288,0.0000095412015,0.000031546275,0.00001396199,0.00048624733],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998609,0.00003296197,0.00000815334,0.000020087811,0.000051957297,0.000025956371],"domain_scores_gemma":[0.9996145,0.00017992353,0.00008703356,0.00003783716,0.00003304908,0.000047711786],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003403815,0.0001403572,0.000271725,0.00061594864,0.0004999724,0.0008705727,0.00031200156,0.0005853488,0.0009638687],"category_scores_gemma":[0.0012494522,0.0002300825,0.0001632896,0.00029746033,0.0017174484,0.0013292404,0.0004199122,0.00047549518,0.00015590354],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00033671272,0.00014173775,0.0044646957,0.00043198353,0.00004257647,0.001774232,0.00082224706,0.027373416,0.20115764,0.70922136,0.00189549,0.052338004],"study_design_scores_gemma":[0.0000541255,0.00011006434,0.0060182335,0.000053957232,0.00001273129,0.00081388885,0.00035913268,0.07393672,0.03142896,0.88422424,0.002911581,0.00007638533],"about_ca_topic_score_codex":0.00024439493,"about_ca_topic_score_gemma":0.00022117692,"teacher_disagreement_score":0.0009638687,"about_ca_system_score_codex":0.0002838712,"about_ca_system_score_gemma":0.00019189878,"threshold_uncertainty_score":0.0032244325},"labels":[],"label_agreement":null},{"id":"W1986572372","doi":"10.1103/physrevb.66.014530","title":"Quasiclassical and statistical properties of fermion systems","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Windsor","funders":"","keywords":"Fermion; Parametrization (atmospheric modeling); Physics; Quantum mechanics; Quantum entanglement; Quantum statistical mechanics; Pseudogap; Degrees of freedom (physics and chemistry); Partition function (quantum field theory); Parity (physics); Fermi–Dirac statistics; Quantum; Superconductivity; Electron","score_opus":0.03094653065678758,"score_gpt":0.26753852044679477,"score_spread":0.2365919897900072,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986572372","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7918634,0.0018626081,0.16706988,0.0038553413,0.00014244963,0.00008857248,0.0005681701,0.00024275998,0.03430688],"genre_scores_gemma":[0.9865241,0.00038614543,0.010190614,0.00018779712,0.00011182917,0.00009316894,0.00013010323,0.00004618764,0.0023300312],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9993401,0.00019682253,0.000028771494,0.00009667321,0.00022987393,0.000107632935],"domain_scores_gemma":[0.9965322,0.0016363383,0.0004055799,0.00064602715,0.00050713826,0.00027269262],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0021804266,0.00017818957,0.00035788232,0.0013763923,0.0011064511,0.002045513,0.00088524714,0.0007743783,0.0029673427],"category_scores_gemma":[0.005063958,0.0003064975,0.00033500916,0.0005204977,0.0032031639,0.002703938,0.00097150484,0.0006799005,0.00021288329],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000010297973,0.000014547905,0.0007911253,0.000018958235,0.000009604736,0.000034838024,0.00009972874,0.0073287385,0.0011707924,0.988442,0.0004567511,0.0016225377],"study_design_scores_gemma":[0.0000071673044,0.000017276936,0.0013619345,0.000013087987,0.000004162804,0.000080927006,0.00004718931,0.19819407,0.0004932936,0.7986155,0.0011458313,0.000019535686],"about_ca_topic_score_codex":0.0018819638,"about_ca_topic_score_gemma":0.0012938707,"teacher_disagreement_score":0.0029673427,"about_ca_system_score_codex":0.0017315289,"about_ca_system_score_gemma":0.0011253222,"threshold_uncertainty_score":0.012563169},"labels":[],"label_agreement":null},{"id":"W1986599850","doi":"10.1103/physrevb.64.104519","title":"Gapped tunneling spectra in the normal state of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Pr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ce</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Cuprate; Quantum tunnelling; Superconductivity; Condensed matter physics; Physics; State (computer science); Charge (physics); Density of states; Quantum mechanics; Algorithm; Computer science","score_opus":0.01807762818705695,"score_gpt":0.2493695261187485,"score_spread":0.23129189793169153,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1986599850","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.84275955,0.0011485792,0.010525345,0.0019758523,0.0004898698,0.000035862424,0.004165696,0.0018711053,0.1370281],"genre_scores_gemma":[0.98425436,0.00027961886,0.002303121,0.00016740763,0.000025322834,0.000044621196,0.0016187205,0.00031504664,0.010991827],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997851,0.000028292301,0.0000076171445,0.00004073831,0.000067067034,0.00007111076],"domain_scores_gemma":[0.99971074,0.00010284106,0.000033972912,0.000044991953,0.000067056346,0.000040397772],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029536488,0.0006193482,0.00056547805,0.00085322617,0.000810891,0.0010893071,0.0011971627,0.0011557505,0.036225732],"category_scores_gemma":[0.0007431577,0.0002525544,0.00027036958,0.00085892476,0.0006644565,0.0012609174,0.0005623472,0.0014187888,0.0019302213],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0029334065,0.0005407488,0.004550551,0.0022823159,0.00019438955,0.004077408,0.0023906108,0.019788578,0.31416687,0.50298834,0.113333896,0.032752965],"study_design_scores_gemma":[0.00031640378,0.001103817,0.035758402,0.0008291926,0.00017477661,0.0022766022,0.005139393,0.44130272,0.30805314,0.15803923,0.046537783,0.00046855013],"about_ca_topic_score_codex":0.0021346696,"about_ca_topic_score_gemma":0.0033265532,"teacher_disagreement_score":0.036225732,"about_ca_system_score_codex":0.00094377575,"about_ca_system_score_gemma":0.0004044084,"threshold_uncertainty_score":0.12118715},"labels":[],"label_agreement":null},{"id":"W1987331836","doi":"10.1103/physrevb.66.165427","title":"Octet composition in alkali-Pb solid alloys","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Alkali metal; Stoichiometry; Intermetallic; Molecular orbital; Materials science; Ionic bonding; Density functional theory; Octet; Atomic orbital; Chemical physics; Crystallography; Physical chemistry; Computational chemistry; Ion; Chemistry; Molecule; Physics; Alloy; Organic chemistry; Metallurgy; Electron","score_opus":0.016113818179530583,"score_gpt":0.3071331112830425,"score_spread":0.29101929310351193,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1987331836","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9862124,0.0005555912,0.0046904534,0.00013324374,0.000023736362,0.000020966932,0.000102577025,0.000074135445,0.008186964],"genre_scores_gemma":[0.99734384,0.00019810462,0.0014352568,0.000025052721,0.0000045837874,0.000030558276,0.00013151435,0.00001836243,0.0008128085],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99989474,0.000019804815,0.0000049116657,0.000008833379,0.00004936858,0.000022405033],"domain_scores_gemma":[0.99990594,0.00003529424,0.000018931414,0.000009520184,0.000016654483,0.000013550022],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016519219,0.00025091536,0.00043937715,0.0009126524,0.0009375933,0.00084833696,0.00048643342,0.0004389451,0.0020813874],"category_scores_gemma":[0.0005181375,0.00035173507,0.00024706675,0.00036274322,0.0004452685,0.0006413107,0.00056370004,0.0003783902,0.00014376167],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011094126,0.00033015027,0.01351986,0.00082466326,0.00017459663,0.0010970357,0.0004525294,0.3521889,0.09523023,0.51526624,0.0016962627,0.018109992],"study_design_scores_gemma":[0.00028092499,0.00035389254,0.010778569,0.00006334882,0.00010767914,0.00043318467,0.00031030862,0.7745069,0.041418683,0.16712505,0.004559261,0.000062113715],"about_ca_topic_score_codex":0.0021876185,"about_ca_topic_score_gemma":0.0029572027,"teacher_disagreement_score":0.0021876185,"about_ca_system_score_codex":0.0005823999,"about_ca_system_score_gemma":0.00046894452,"threshold_uncertainty_score":0.006962955},"labels":[],"label_agreement":null},{"id":"W1987479418","doi":"10.1103/physrevb.61.2028","title":"Electron-phonon interaction in a very low mobility<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">GaAs</mml:mi><mml:mo>/</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Al</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">As</mml:mi></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>δ</mml:mi></mml:math>-doped gated quantum well","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":35,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Condensed matter physics; Scattering; Physics; Phonon; Electron; Relaxation (psychology); Mean free path; Phonon scattering; Scattering rate; Quantum mechanics; Superconductivity","score_opus":0.013411879506750683,"score_gpt":0.2520966745427716,"score_spread":0.23868479503602094,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1987479418","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.84266764,0.0018900291,0.03149927,0.00501987,0.0012230382,0.000068623594,0.0008276059,0.001250816,0.115553126],"genre_scores_gemma":[0.95685565,0.0002952037,0.0043107085,0.0003613915,0.000075461845,0.00007017308,0.0002744745,0.00019971986,0.03755715],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997557,0.00003328702,0.000005313919,0.000041673902,0.000095581476,0.000068418594],"domain_scores_gemma":[0.99977726,0.00010076933,0.000018709768,0.000024572544,0.000045090997,0.00003368738],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030674745,0.00028303557,0.00069262355,0.0006036789,0.0015057091,0.0016727813,0.0014145365,0.0012673138,0.020099258],"category_scores_gemma":[0.0006363185,0.00057189754,0.0004244118,0.00043083876,0.0011526995,0.0009821618,0.0008830513,0.001183822,0.002340637],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0014462277,0.0005921897,0.006178049,0.0015405322,0.00025056832,0.004314604,0.001321601,0.054846667,0.32008207,0.5260786,0.065616645,0.01773218],"study_design_scores_gemma":[0.0005466888,0.0009193536,0.014232077,0.00027493853,0.00021794483,0.0013164455,0.001141406,0.676989,0.112975895,0.15981418,0.031208728,0.00036336633],"about_ca_topic_score_codex":0.0038612392,"about_ca_topic_score_gemma":0.0057730717,"teacher_disagreement_score":0.020099258,"about_ca_system_score_codex":0.0010891374,"about_ca_system_score_gemma":0.00066175574,"threshold_uncertainty_score":0.06723869},"labels":[],"label_agreement":null},{"id":"W1987866434","doi":"10.1103/physrevb.67.024518","title":"Magnetic flux jumps in textured<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Bi</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CaCu</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>8</mml:mn><mml:mo>+</mml:mo><mml:mi>δ</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; Canadian Institute for Advanced Research; Brockhouse Institute for Materials Research","funders":"","keywords":"Flux (metallurgy); Magnetic flux; Magnetic field; Atmospheric temperature range; Condensed matter physics; Physics; Magnetization; Materials science; Thermodynamics; Metallurgy; Quantum mechanics","score_opus":0.01598296623416427,"score_gpt":0.243766298630158,"score_spread":0.22778333239599374,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1987866434","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.04503419,0.00082699367,0.09956817,0.005241476,0.005310159,0.00039317782,0.079134226,0.1453065,0.6191851],"genre_scores_gemma":[0.31163615,0.00088592776,0.0887039,0.0026223238,0.0007760788,0.00052936084,0.119276956,0.04810634,0.427463],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996389,0.000028542132,0.00001602405,0.000056695993,0.0001831517,0.00007674809],"domain_scores_gemma":[0.99933785,0.00015570753,0.00003335657,0.000120009405,0.00028076716,0.000072273986],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0003382047,0.00083401153,0.00069256383,0.0011789073,0.00095912616,0.0025023296,0.0014562439,0.0015475191,0.3251559],"category_scores_gemma":[0.0017959935,0.00056266243,0.000471599,0.0013364288,0.00039037978,0.002035962,0.0011801657,0.0014496256,0.078215845],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010198397,0.00011000329,0.001272711,0.0004670369,0.000029154447,0.0004980705,0.00035642035,0.0038997228,0.019255057,0.012796659,0.8815779,0.078717515],"study_design_scores_gemma":[0.00035831446,0.00012032276,0.007107776,0.00017682387,0.0000437651,0.00039559655,0.0005152382,0.029977454,0.052043594,0.010935417,0.89819187,0.00013382507],"about_ca_topic_score_codex":0.007121938,"about_ca_topic_score_gemma":0.011233196,"teacher_disagreement_score":0.3251559,"about_ca_system_score_codex":0.001117881,"about_ca_system_score_gemma":0.00080356165,"threshold_uncertainty_score":0.9625832},"labels":[],"label_agreement":null},{"id":"W1987928767","doi":"10.1103/physrevb.61.8262","title":"Effect of oxygen on transient photoconductivity in thin-film<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ti</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Electronic and Structural Properties of Oxides","field":"Materials Science","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Guelph","funders":"","keywords":"Argon; Photoconductivity; Electron capture; Materials science; Relaxation (psychology); Oxygen; Electron; Analytical Chemistry (journal); Physics; Atomic physics; Condensed matter physics; Chemistry; Nuclear physics; Quantum mechanics; Optoelectronics","score_opus":0.015341918247125871,"score_gpt":0.2507379162918825,"score_spread":0.23539599804475664,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1987928767","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98564744,0.0021410182,0.001683952,0.00048283982,0.00018475845,0.00003503464,0.00087852543,0.00029265517,0.008653788],"genre_scores_gemma":[0.9924482,0.0011674959,0.0010414042,0.00013984578,0.000017875986,0.000026537955,0.0005389055,0.000082805804,0.004537073],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99977106,0.000023040233,0.000013510518,0.00006570654,0.000051144638,0.00007559473],"domain_scores_gemma":[0.9994617,0.00029052625,0.00007017538,0.00004083574,0.000103211656,0.000033550383],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032597024,0.00040031882,0.00026642528,0.00021368657,0.00041650858,0.0005513361,0.0008833921,0.0005884837,0.010932403],"category_scores_gemma":[0.0009076159,0.0002456935,0.00022980363,0.00036609537,0.00035747106,0.0004866644,0.00018794466,0.0011534393,0.0008440796],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007867865,0.000112092,0.00039580962,0.00031864172,0.00003678064,0.00030319236,0.0003940507,0.00036079902,0.9886663,0.00056023774,0.001762856,0.0063024703],"study_design_scores_gemma":[0.00002550146,0.00033773604,0.0022788218,0.000040664447,0.000022836657,0.000070514805,0.00016815981,0.001895217,0.9928993,0.00009845533,0.0021502664,0.000012660029],"about_ca_topic_score_codex":0.00558807,"about_ca_topic_score_gemma":0.0054778797,"teacher_disagreement_score":0.010932403,"about_ca_system_score_codex":0.00064282055,"about_ca_system_score_gemma":0.0002520144,"threshold_uncertainty_score":0.036572576},"labels":[],"label_agreement":null},{"id":"W1988164257","doi":"10.1103/physrevb.68.174502","title":"Antiferromagnetic fluctuations and<i>d</i>-wave superconductivity in electron-doped high-temperature superconductors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":72,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Regroupement Québécois sur les Matériaux de Pointe; Université de Sherbrooke","funders":"","keywords":"Pseudogap; Antiferromagnetism; Condensed matter physics; Superconductivity; Pairing; Cuprate; Physics; Doping; Coupling (piping); Electron; Electron pair; High-temperature superconductivity; Quantum Monte Carlo; Quantum fluctuation; Monte Carlo method; Materials science; Quantum; Quantum mechanics","score_opus":0.012495722576786706,"score_gpt":0.26615926027431036,"score_spread":0.25366353769752364,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1988164257","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99350923,0.0007292535,0.0017958035,0.00011810122,0.000020076066,0.0000036449305,0.000011031138,0.00003188984,0.003780798],"genre_scores_gemma":[0.99876463,0.00032893146,0.00054972246,0.00001296191,0.000011856815,0.000003042652,0.000008546075,0.0000032123544,0.0003170651],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999659,0.000008958742,0.0000025597408,0.0000052805185,0.000009984691,0.000007366618],"domain_scores_gemma":[0.99986315,0.00005338189,0.000039631406,0.000013856426,0.000012510647,0.000017561793],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011644691,0.00020334357,0.00016164411,0.00028002134,0.00038296363,0.0005804089,0.00022809896,0.00018763758,0.00050096604],"category_scores_gemma":[0.0004212539,0.00012532664,0.00009073402,0.0002503939,0.00057622907,0.00037051886,0.00024190164,0.00024455297,0.000064730266],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000930055,0.0006323963,0.03474596,0.00074671855,0.00012597594,0.0026217785,0.0013889626,0.092538275,0.47402874,0.3339271,0.0038211374,0.05449288],"study_design_scores_gemma":[0.00015566846,0.0006304561,0.030126812,0.000059169495,0.00011345974,0.0019490364,0.0003368209,0.49655896,0.33601373,0.12769915,0.0062557217,0.00010100494],"about_ca_topic_score_codex":0.0004726363,"about_ca_topic_score_gemma":0.0006329118,"teacher_disagreement_score":0.0005804089,"about_ca_system_score_codex":0.00018863766,"about_ca_system_score_gemma":0.00010836747,"threshold_uncertainty_score":0.0016759634},"labels":[],"label_agreement":null},{"id":"W1988593074","doi":"10.1103/physrevb.66.214502","title":"Competition of superconductivity and antiferromagnetism in a<i>d</i>-wave vortex lattice","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":57,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Condensed matter physics; Antiferromagnetism; Vortex; Superconductivity; Physics; Coherence length; Lattice (music); Pinning force; Magnetic field; Quantum mechanics","score_opus":0.026178014588332982,"score_gpt":0.2663184864599986,"score_spread":0.24014047187166562,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1988593074","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9925948,0.0007014396,0.0016481089,0.00013174796,0.00001750143,0.000006001636,0.000012607082,0.0000152088705,0.004872542],"genre_scores_gemma":[0.9983783,0.0003454352,0.0008039042,0.000011702823,0.000010658165,0.0000070937085,0.0000137670895,0.000003742606,0.00042531439],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99990034,0.00003352432,0.0000048324237,0.000013761121,0.00002627124,0.000021224314],"domain_scores_gemma":[0.99978083,0.00009672414,0.000059520382,0.000015564283,0.00001896551,0.000028518838],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019682643,0.00016866064,0.00031873042,0.00042715497,0.00049706467,0.00074241345,0.00037286652,0.0002938997,0.00093422976],"category_scores_gemma":[0.00042413492,0.00014081351,0.00014730853,0.0002564689,0.0009353461,0.0005134223,0.00039221917,0.00023545304,0.00011308352],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000622415,0.00021027913,0.008281722,0.0006174061,0.00007080746,0.001231292,0.00029308852,0.03362822,0.29967675,0.63593256,0.0013068231,0.018128678],"study_design_scores_gemma":[0.0004505611,0.0010016719,0.010114507,0.00006195992,0.00009584285,0.001996611,0.00049056305,0.46675974,0.14806822,0.36263597,0.008228653,0.00009567299],"about_ca_topic_score_codex":0.0003686726,"about_ca_topic_score_gemma":0.0005467492,"teacher_disagreement_score":0.00093422976,"about_ca_system_score_codex":0.00039719284,"about_ca_system_score_gemma":0.00025785467,"threshold_uncertainty_score":0.0031253695},"labels":[],"label_agreement":null},{"id":"W1988974305","doi":"10.1103/physrevb.62.15386","title":"Coherent control and enhancement of refractive index in an asymmetric double quantum well","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum optics and atomic interactions","field":"Physics and Astronomy","cited_by":64,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Physics; Refractive index; Coherence (philosophical gambling strategy); Absorption (acoustics); Laser; Electron; Atomic physics; Infrared; Condensed matter physics; Optics; Quantum mechanics","score_opus":0.00976651585762304,"score_gpt":0.3103714659200787,"score_spread":0.30060495006245563,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1988974305","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.981157,0.00017992448,0.014695586,0.00018795813,0.000040631592,0.000023936589,0.00003100944,0.00006263518,0.0036214232],"genre_scores_gemma":[0.9922523,0.00011861464,0.0070047276,0.000021207496,0.0000082525185,0.00001833634,0.000009891507,0.000005388834,0.0005612213],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999013,0.000010961094,0.0000048967036,0.000022622335,0.000040572784,0.00001967058],"domain_scores_gemma":[0.99985695,0.000031563166,0.000036731144,0.000019136836,0.000022006709,0.00003358174],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021223495,0.00020783316,0.00023974721,0.00015418125,0.000334496,0.00046878343,0.00070815574,0.0003590324,0.00044554233],"category_scores_gemma":[0.00020489591,0.00017562279,0.00013869947,0.00014658886,0.00072620966,0.0005885695,0.00043381692,0.00029522183,0.00012389448],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013222295,0.00011182644,0.00046972584,0.000045764107,0.000009882508,0.00019666922,0.000071833136,0.0053933947,0.9713317,0.019306106,0.000120759825,0.0028100957],"study_design_scores_gemma":[0.0001853919,0.00050911837,0.0012147733,0.00001354861,0.000027370172,0.0001758613,0.00007889314,0.3319757,0.6548024,0.008676996,0.0022727086,0.00006727012],"about_ca_topic_score_codex":0.0005378197,"about_ca_topic_score_gemma":0.0009777374,"teacher_disagreement_score":0.00070815574,"about_ca_system_score_codex":0.0005032953,"about_ca_system_score_gemma":0.00029444913,"threshold_uncertainty_score":0.0036517382},"labels":[],"label_agreement":null},{"id":"W1989034096","doi":"10.1103/physrevb.63.245407","title":"<i>Ab initio</i>modeling of quantum transport properties of molecular electronic devices","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":3452,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Conductance; Ab initio; Physics; Ballistic conduction; Quantum; Scattering; Ab initio quantum chemistry methods; Condensed matter physics; Nanoelectronics; Non-equilibrium thermodynamics; Density functional theory; Carbon nanotube; Quantum mechanics; Materials science; Nanotechnology; Molecule; Electron","score_opus":0.011165036272692504,"score_gpt":0.23535237219169397,"score_spread":0.22418733591900147,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1989034096","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.37489274,0.0016434699,0.5950694,0.0011002198,0.00016175258,0.000107852546,0.0004147684,0.0008396309,0.025770154],"genre_scores_gemma":[0.8561096,0.001086433,0.13773267,0.000105508116,0.0000918171,0.00019633654,0.00017886297,0.00015935917,0.0043393294],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99989116,0.000028395647,0.0000035829503,0.000008679679,0.0000547825,0.00001337065],"domain_scores_gemma":[0.99979264,0.000094183,0.000022576838,0.00003393729,0.0000467902,0.000009867258],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027884648,0.00027238618,0.00033960826,0.0004233315,0.00073695893,0.0005260672,0.0007865236,0.0006448329,0.0011221482],"category_scores_gemma":[0.0006406982,0.00022584725,0.0003566723,0.00037433964,0.0007325941,0.0007890622,0.00019839311,0.000528722,0.0002539556],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000017514847,0.000048833273,0.00053767907,0.00011085698,0.000019841076,0.00011659301,0.000072450675,0.903334,0.011096758,0.07352965,0.0006591235,0.010456695],"study_design_scores_gemma":[0.0000022606273,0.0000070957194,0.00007170607,0.0000027165222,0.0000022734894,0.000013741605,0.0000035292571,0.99067795,0.0019818621,0.006546326,0.0006866935,0.0000037229345],"about_ca_topic_score_codex":0.0026653695,"about_ca_topic_score_gemma":0.002200178,"teacher_disagreement_score":0.0026653695,"about_ca_system_score_codex":0.00042749592,"about_ca_system_score_gemma":0.0005041197,"threshold_uncertainty_score":0.005299628},"labels":[],"label_agreement":null},{"id":"W1990131458","doi":"10.1103/physrevb.65.035401","title":"Dynamics of dislocations and surface instabilities in misfitting heteroepitaxial films","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Adhesion, Friction, and Surface Interactions","field":"Engineering","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Dalhousie University; McGill University","funders":"","keywords":"Non-equilibrium thermodynamics; Materials science; Brittleness; Condensed matter physics; Curvature; Instability; Elasticity (physics); Ductility (Earth science); Mechanics; Composite material; Physics; Thermodynamics; Creep; Geometry","score_opus":0.009164037519694303,"score_gpt":0.2653625226039919,"score_spread":0.2561984850842976,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1990131458","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97819066,0.0006090157,0.01800927,0.0004111868,0.000021671442,0.000011245569,0.000037002294,0.00004700038,0.002663021],"genre_scores_gemma":[0.99608505,0.0002946546,0.0019769059,0.00003478593,0.0000110199935,0.000011251927,0.00002766558,0.000011627805,0.001546983],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99996114,0.0000060210996,0.0000021672859,0.000007739426,0.000012304475,0.000010696381],"domain_scores_gemma":[0.9998882,0.000030420326,0.00003069762,0.000010724721,0.0000138872,0.000025925981],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012117482,0.00022237946,0.0002765903,0.0002921085,0.00036239345,0.00058950006,0.00046912293,0.0005748221,0.00071870064],"category_scores_gemma":[0.0003746788,0.00021563504,0.00022689924,0.00019102996,0.0007056557,0.0009645774,0.00044205663,0.0004880874,0.00008744894],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00026643666,0.00032291425,0.016090978,0.0001216377,0.00007998045,0.0022384038,0.0010945505,0.55502754,0.22759993,0.18024066,0.0016400684,0.015276887],"study_design_scores_gemma":[0.000027300754,0.000043836844,0.00472023,0.000004752913,0.0000058540436,0.00017253571,0.000099536555,0.9645069,0.0051917285,0.024518793,0.00068947935,0.00001902121],"about_ca_topic_score_codex":0.0017722971,"about_ca_topic_score_gemma":0.0012699697,"teacher_disagreement_score":0.0017722971,"about_ca_system_score_codex":0.0005285371,"about_ca_system_score_gemma":0.00016322796,"threshold_uncertainty_score":0.0038349032},"labels":[],"label_agreement":null},{"id":"W1990203164","doi":"10.1103/physrevb.62.8661","title":"Conductivity sum rule, implication for in-plane dynamics, and<b><i>c</i></b>-axis response","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Sum rule in quantum mechanics; Plane (geometry); Physics; Condensed matter physics; Coupling (piping); Pseudogap; Conductivity; Fermi Gamma-ray Space Telescope; Scattering; Fermi's golden rule; Optical conductivity; Dynamics (music); Optics; Quantum mechanics; Mathematics; Geometry; Materials science; Superconductivity","score_opus":0.011859849878230612,"score_gpt":0.2914374750935447,"score_spread":0.27957762521531404,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1990203164","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.70595366,0.0016962172,0.08566004,0.0037374352,0.00080559327,0.00006407375,0.0006435613,0.00062705774,0.20081234],"genre_scores_gemma":[0.98715264,0.00034545685,0.007293325,0.00033699928,0.00006411907,0.00003543001,0.00014959658,0.00009857526,0.0045239334],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99949837,0.00006832659,0.000034486202,0.000110456196,0.00020226746,0.000086088534],"domain_scores_gemma":[0.99835086,0.00051089376,0.00026350238,0.00043720385,0.00024783897,0.00018984015],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005403537,0.00031541917,0.00047162778,0.0004956751,0.0010294263,0.0017683426,0.00093335874,0.0009847479,0.007985546],"category_scores_gemma":[0.003108565,0.00018967743,0.0003286795,0.00040555117,0.0019244975,0.0011846697,0.00065989036,0.0015175525,0.00088214903],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004424111,0.0001292572,0.004859916,0.000253103,0.000028630875,0.0014904301,0.00038963248,0.0043533766,0.09974977,0.853816,0.0043698465,0.030117612],"study_design_scores_gemma":[0.000040079918,0.00013353491,0.007754813,0.000039748906,0.000022819586,0.0033779435,0.0003999998,0.04561271,0.078952335,0.85622084,0.0073569966,0.0000881209],"about_ca_topic_score_codex":0.0005446736,"about_ca_topic_score_gemma":0.000545561,"teacher_disagreement_score":0.007985546,"about_ca_system_score_codex":0.00042180845,"about_ca_system_score_gemma":0.00042285564,"threshold_uncertainty_score":0.026714265},"labels":[],"label_agreement":null},{"id":"W1990424512","doi":"10.1103/physrevb.68.195102","title":"First-principles local pseudopotentials for group-IV elements","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Pseudopotential; Eigenvalues and eigenvectors; Group (periodic table); Work (physics); Lattice (music); Lattice constant; Diamond; Bond length; Physics; Excitation; Materials science; Atomic physics; Quantum mechanics; Molecule","score_opus":0.020717596565072525,"score_gpt":0.3093350987815274,"score_spread":0.2886175022164548,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1990424512","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.030635118,0.00061476,0.93132985,0.00033838575,0.00020614408,0.00041145916,0.00044137714,0.0010740245,0.034948885],"genre_scores_gemma":[0.38285214,0.0010396412,0.58613414,0.0003139922,0.00011454013,0.0021853303,0.0010857694,0.0010061803,0.025268305],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996277,0.00009422621,0.000016365037,0.00001846135,0.000203582,0.000039735936],"domain_scores_gemma":[0.999671,0.00008504429,0.000015968013,0.00011645102,0.00008716889,0.000024503359],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008438741,0.0006852546,0.0011616987,0.0010645975,0.0012069565,0.0012873876,0.0026300624,0.0011007865,0.0066030235],"category_scores_gemma":[0.001091135,0.0003991566,0.0008673812,0.0012279962,0.000728896,0.0011168278,0.0009847846,0.0013380419,0.0022785466],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006838946,0.000072948715,0.00026966265,0.00043057543,0.000041195788,0.00033324625,0.00014402211,0.19420041,0.010699824,0.74333197,0.0051613944,0.045246422],"study_design_scores_gemma":[0.0000706046,0.00007345541,0.00018941319,0.000044549386,0.000016427422,0.00019131976,0.000047813664,0.76905334,0.005456346,0.2097427,0.015066259,0.000047728012],"about_ca_topic_score_codex":0.0007902149,"about_ca_topic_score_gemma":0.0011000114,"teacher_disagreement_score":0.0066030235,"about_ca_system_score_codex":0.00072411465,"about_ca_system_score_gemma":0.0009921319,"threshold_uncertainty_score":0.022089362},"labels":[],"label_agreement":null},{"id":"W1992266422","doi":"10.1103/physrevb.62.10774","title":"Emittance fluctuations in a mesoscopic diffusive conductor","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Mesoscopic physics; Thermal emittance; Conductance; Physics; Conductor; Condensed matter physics; Amplitude; Gaussian; Scattering; Random matrix; Quantum mechanics; Materials science; Optics","score_opus":0.007675948284632999,"score_gpt":0.28045431241438,"score_spread":0.27277836412974704,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1992266422","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9784199,0.00015005132,0.018986145,0.00016271893,0.0000105699055,0.000011578818,0.00003536731,0.0001229153,0.0021007492],"genre_scores_gemma":[0.9984884,0.00004439232,0.0011114307,0.000011354971,0.0000048178376,0.000003701031,0.000013799974,0.000008540583,0.00031369738],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999163,0.000013087058,0.0000024512633,0.000018689381,0.000033654367,0.000015837153],"domain_scores_gemma":[0.99982315,0.000078209974,0.000028974311,0.000023830185,0.000020914062,0.000025041216],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018054474,0.00022648035,0.00026152996,0.00041069288,0.00030521242,0.00065729144,0.00032095486,0.00032842706,0.00042267147],"category_scores_gemma":[0.0006902638,0.0001658448,0.0002379191,0.00021605362,0.00090211263,0.00044666036,0.00032371472,0.0003877736,0.000048816426],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021193778,0.00016061404,0.006390346,0.00015976328,0.00006857141,0.0020236615,0.00051606,0.40426797,0.4467887,0.13224596,0.00063911284,0.006527393],"study_design_scores_gemma":[0.000017451857,0.000055559613,0.0023774148,0.0000036510817,0.0000071886557,0.00017931648,0.00002541401,0.97679013,0.011524292,0.008786635,0.00021702716,0.00001595276],"about_ca_topic_score_codex":0.0010823219,"about_ca_topic_score_gemma":0.00061712624,"teacher_disagreement_score":0.0010823219,"about_ca_system_score_codex":0.0007095095,"about_ca_system_score_gemma":0.00021616324,"threshold_uncertainty_score":0.0051478148},"labels":[],"label_agreement":null},{"id":"W1992554930","doi":"10.1103/physrevb.64.224416","title":"Neutron scattering studies of the cooperative paramagnet pyrochlore<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Tb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ti</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":167,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; Canadian Institute for Advanced Research","funders":"","keywords":"Pyrochlore; Antiferromagnetism; Condensed matter physics; Physics; Inelastic neutron scattering; Paramagnetism; Neutron scattering; Scattering; Neutron diffraction; Order (exchange); Materials science; Crystallography; Optics; Diffraction; Chemistry; Quantum mechanics","score_opus":0.019276127957230587,"score_gpt":0.26273884613623344,"score_spread":0.24346271817900286,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1992554930","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97601867,0.0021057373,0.0035106956,0.00022501053,0.00006403333,0.00003858389,0.0011863342,0.00006854127,0.016782343],"genre_scores_gemma":[0.9751873,0.001438299,0.0022442837,0.00009838586,0.0000081469325,0.000019587322,0.0019178235,0.00008988678,0.018996323],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997025,0.000034187076,0.000011889485,0.00006373515,0.000099300254,0.000088303976],"domain_scores_gemma":[0.99961925,0.00007569074,0.000039788345,0.000038053306,0.0001675331,0.00005961443],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036344485,0.0003864867,0.000301809,0.0002936566,0.00062467594,0.0003554173,0.00058057514,0.00047797276,0.005678663],"category_scores_gemma":[0.00056644715,0.00024241813,0.00032890425,0.0005822717,0.00037553933,0.0003190162,0.00032500268,0.0009442124,0.0010540592],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0008781497,0.00012384774,0.0010819931,0.00017532117,0.000045900077,0.00021329413,0.00022595763,0.0013551189,0.98896307,0.0017583607,0.0019033756,0.0032756573],"study_design_scores_gemma":[0.000040676434,0.0003937473,0.0069025173,0.000025858619,0.000024182385,0.00020337304,0.00023305518,0.0029661236,0.982489,0.00021892965,0.0064714807,0.000031129282],"about_ca_topic_score_codex":0.014534841,"about_ca_topic_score_gemma":0.0159041,"teacher_disagreement_score":0.014534841,"about_ca_system_score_codex":0.00073413266,"about_ca_system_score_gemma":0.0005446624,"threshold_uncertainty_score":0.028900445},"labels":[],"label_agreement":null},{"id":"W1992867658","doi":"10.1103/physrevb.65.064502","title":"<i>c</i>-axis response of a high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>superconductor with<i>d</i>-density-wave order","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Pseudogap; Physics; State (computer science); Kinetic energy; Cuprate; Unit (ring theory); Condensed matter physics; Algorithm; Computer science; Quantum mechanics; Mathematics; Superconductivity","score_opus":0.020563574901779447,"score_gpt":0.24492078339865983,"score_spread":0.22435720849688037,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1992867658","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9668665,0.00020530142,0.005462558,0.0010180245,0.00018912241,0.000029811914,0.00033061704,0.00046410068,0.025433915],"genre_scores_gemma":[0.99671763,0.00006371671,0.00087431073,0.00009082341,0.000018656176,0.000006703879,0.00010369322,0.00002905458,0.002095344],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990153,0.000021195616,0.0000033114534,0.000022848657,0.00002634506,0.000024732117],"domain_scores_gemma":[0.99971145,0.00010011587,0.000049106977,0.000025658406,0.00004863272,0.00006498114],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026044206,0.00021970081,0.0001994857,0.00020033009,0.0003002506,0.00055623543,0.00034261405,0.00039465554,0.009294742],"category_scores_gemma":[0.00044244385,0.00011167332,0.00015850573,0.00031418682,0.000580649,0.00028887842,0.00024685767,0.00046473037,0.00050314685],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0021035438,0.00030467205,0.0042381845,0.0003873783,0.00006687513,0.0012878053,0.0006231566,0.012711922,0.91284823,0.033837073,0.015164601,0.016426597],"study_design_scores_gemma":[0.00027565096,0.0013066059,0.045108136,0.00007509469,0.00007200337,0.0012222276,0.00079583994,0.5042866,0.4243642,0.011086519,0.0112018045,0.00020537415],"about_ca_topic_score_codex":0.00087886734,"about_ca_topic_score_gemma":0.000928093,"teacher_disagreement_score":0.009294742,"about_ca_system_score_codex":0.0003809364,"about_ca_system_score_gemma":0.00017382037,"threshold_uncertainty_score":0.031094015},"labels":[],"label_agreement":null},{"id":"W1993080992","doi":"10.1103/physrevb.67.045310","title":"Density dependence of critical magnetic fields at the metal-insulator bifurcation in two dimensions","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Dalhousie University","funders":"Australian Research Council; Natural Sciences and Engineering Research Council of Canada; Université de Montpellier","keywords":"Condensed matter physics; Physics; Electron; Magnetic field; Bifurcation; Polarization (electrochemistry); Spin polarization; Quantum mechanics; Nonlinear system; Chemistry","score_opus":0.010854476659892616,"score_gpt":0.29964524136077997,"score_spread":0.2887907647008873,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1993080992","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9888442,0.00042634364,0.0031276713,0.000233724,0.000009230811,0.000014733444,0.00004308839,0.00013943727,0.007161694],"genre_scores_gemma":[0.999049,0.00010689045,0.0005452281,0.000008968675,0.0000051730735,0.000008558183,0.000026996026,0.000006001608,0.0002431935],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992466,0.000017668981,0.0000032268752,0.000010224715,0.000018649425,0.00002557375],"domain_scores_gemma":[0.99918634,0.00039927365,0.00013689777,0.00004141292,0.0001057751,0.00013032017],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026379482,0.00016119267,0.0002608208,0.0008475326,0.00046391197,0.0007958118,0.000279241,0.00028908867,0.0015988986],"category_scores_gemma":[0.001622885,0.00025949773,0.00013140668,0.00023006934,0.0011570901,0.0005448548,0.0004710165,0.00048132567,0.0001681864],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011624827,0.0004101423,0.012082399,0.00048166641,0.00007531914,0.0011924894,0.0016096196,0.04844793,0.59800386,0.31768784,0.0026949206,0.016151328],"study_design_scores_gemma":[0.00021662246,0.0004626575,0.03510963,0.0001244192,0.000068439265,0.0008911801,0.00053460686,0.56504023,0.28170314,0.11320372,0.0025078715,0.00013733808],"about_ca_topic_score_codex":0.001396538,"about_ca_topic_score_gemma":0.0011962485,"teacher_disagreement_score":0.0015988986,"about_ca_system_score_codex":0.00077288284,"about_ca_system_score_gemma":0.0003625306,"threshold_uncertainty_score":0.0056076646},"labels":[],"label_agreement":null},{"id":"W1993331957","doi":"10.1103/physrevb.65.054412","title":"Effects of the biquadratic exchange coupling on the localization and scaling laws of spin waves in Fibonacci superlattices","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quasicrystal Structures and Properties","field":"Materials Science","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University","funders":"Natural Sciences and Engineering Research Council of Canada; Conselho Nacional de Desenvolvimento Científico e Tecnológico","keywords":"Fibonacci number; Quasiperiodic function; Superlattice; Condensed matter physics; Physics; Scaling; Spin wave; Ferromagnetism; Random phase approximation; Coupling (piping); Spin (aerodynamics); Bilinear interpolation; Exchange interaction; Quantum mechanics; Materials science; Mathematics","score_opus":0.016179389016027227,"score_gpt":0.25792652116038706,"score_spread":0.24174713214435983,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1993331957","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9747415,0.00043175765,0.019961854,0.00013118856,0.00001799898,0.000018463104,0.00001160852,0.00006065666,0.0046248646],"genre_scores_gemma":[0.9927884,0.00022773659,0.0063944934,0.0000270701,0.000009909402,0.000022147577,0.000010799921,0.000016646183,0.00050275587],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99982136,0.00006882032,0.0000073738465,0.000015989954,0.00006249779,0.000023981247],"domain_scores_gemma":[0.9995345,0.00025720583,0.00008592079,0.00003841143,0.000040829636,0.000043163203],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004099028,0.00035155134,0.00030694724,0.0007607547,0.0006230981,0.0007679957,0.00042199832,0.00048929686,0.0011240435],"category_scores_gemma":[0.0012385554,0.00023076774,0.00020759847,0.00031246652,0.00095886266,0.00077651645,0.00033325652,0.0003143852,0.00013830459],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00060846226,0.00027368925,0.003761263,0.00041913206,0.00008356449,0.0024109345,0.0011517705,0.14871508,0.4307653,0.39029184,0.00063926284,0.020879727],"study_design_scores_gemma":[0.00013178548,0.00035152113,0.007802963,0.00003807759,0.000043800756,0.001031219,0.00037537768,0.7947285,0.06367552,0.13032606,0.0014060308,0.00008920147],"about_ca_topic_score_codex":0.00039931698,"about_ca_topic_score_gemma":0.00057731534,"teacher_disagreement_score":0.0011240435,"about_ca_system_score_codex":0.00032564873,"about_ca_system_score_gemma":0.00022473927,"threshold_uncertainty_score":0.0037603378},"labels":[],"label_agreement":null},{"id":"W1993601171","doi":"10.1103/physrevb.65.014517","title":"Electron-phonon interaction and ultrasonic attenuation in the ruthenate and cuprate superconductors","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Superconductivity; Cuprate; Ultrasonic attenuation; Condensed matter physics; Attenuation; Phonon; Electron; Ultrasonic sensor; Physics; Materials science; Nuclear physics; Quantum mechanics; Acoustics","score_opus":0.01309494163894965,"score_gpt":0.31313770731739765,"score_spread":0.300042765678448,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1993601171","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98274404,0.0014163075,0.012304043,0.000062489045,0.00001547081,0.000007752543,0.000017894637,0.000052309235,0.0033796192],"genre_scores_gemma":[0.9973248,0.0004395382,0.0015811007,0.00000870469,0.000009015866,0.0000054174416,0.000018215504,0.00001475709,0.0005983765],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998441,0.000029842407,0.000007685889,0.00001207967,0.00008226436,0.000024051009],"domain_scores_gemma":[0.9998548,0.000058170914,0.00004843713,0.0000092039045,0.00002115585,0.000008259805],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018139025,0.0002749982,0.00039881695,0.00074452115,0.00021861943,0.00034715582,0.00035977145,0.0002478952,0.00053461135],"category_scores_gemma":[0.00049960625,0.00018015972,0.0002206495,0.00033933285,0.00051799923,0.00028070377,0.0003717214,0.00024909666,0.000108178014],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00023350546,0.00008304498,0.006238376,0.00019207159,0.00003826897,0.00097013236,0.00059254415,0.021176046,0.92909354,0.027530137,0.00018413477,0.013668125],"study_design_scores_gemma":[0.0000742512,0.00043521632,0.050985236,0.000055602297,0.00011813719,0.0018866797,0.00042241282,0.24143519,0.68637234,0.014168658,0.0039275177,0.000118872245],"about_ca_topic_score_codex":0.0014912687,"about_ca_topic_score_gemma":0.0021131327,"teacher_disagreement_score":0.0014912687,"about_ca_system_score_codex":0.00025012714,"about_ca_system_score_gemma":0.00016990108,"threshold_uncertainty_score":0.0029651523},"labels":[],"label_agreement":null},{"id":"W1993868088","doi":"10.1103/physrevb.68.214201","title":"Structural relaxation and configurational statistics of the orientational glass CuCN","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Material Dynamics and Properties","field":"Materials Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Enthalpy; Thermodynamics; Heat capacity; Configuration entropy; Materials science; Relaxation (psychology); Entropy (arrow of time); Specific heat; Polymer; Condensed matter physics; Physics","score_opus":0.012303919879397962,"score_gpt":0.2744871475106352,"score_spread":0.26218322763123725,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1993868088","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9975591,0.00029631853,0.0012312824,0.000016768274,0.000006498607,0.0000048804227,0.00008244728,0.000010614619,0.0007921195],"genre_scores_gemma":[0.9993112,0.000104230494,0.0002443853,0.0000039125953,0.0000029561966,0.0000021820358,0.000080272315,0.0000045387974,0.0002463636],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999317,0.000007991487,0.0000024376216,0.000019985588,0.000023041737,0.000014992458],"domain_scores_gemma":[0.99970776,0.000085227824,0.00009188489,0.000021549997,0.00006533759,0.000028278917],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018696877,0.00012504325,0.000102846134,0.00032997463,0.00015119683,0.00017324093,0.00016160018,0.000080633086,0.00064999115],"category_scores_gemma":[0.0006709474,0.000113635026,0.000077367346,0.00027733837,0.0005114721,0.00020406455,0.00010670659,0.00023811472,0.000047610767],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000307386,0.000036541704,0.01019196,0.00012267007,0.000022167764,0.00016868376,0.000349822,0.008404588,0.96656924,0.003589461,0.00019387831,0.010043566],"study_design_scores_gemma":[0.00002423028,0.0003711566,0.10646091,0.0000155726,0.000028258044,0.00032444575,0.00012780832,0.12271793,0.76631016,0.0016574775,0.0018916633,0.00007042055],"about_ca_topic_score_codex":0.0051187705,"about_ca_topic_score_gemma":0.0054204515,"teacher_disagreement_score":0.0051187705,"about_ca_system_score_codex":0.0005331628,"about_ca_system_score_gemma":0.00016583437,"threshold_uncertainty_score":0.01017791},"labels":[],"label_agreement":null},{"id":"W1994393851","doi":"10.1103/physrevb.63.140505","title":"Effects of an in-plane magnetic field on<i>c</i>-axis sum rule and superfluid density in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>cuprates","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Superfluidity; Physics; Condensed matter physics; Brillouin zone; Plane (geometry); Magnetic field; Diagonal; Cuprate; Field (mathematics); Zero (linguistics); Density matrix; Quantum mechanics; Superconductivity; Geometry; Mathematics","score_opus":0.01144633295052641,"score_gpt":0.24194452017690316,"score_spread":0.23049818722637674,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1994393851","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9953644,0.00023565382,0.0007444937,0.00011866867,0.000026868825,0.000006793179,0.00011156165,0.00010471545,0.003286808],"genre_scores_gemma":[0.9986695,0.00012374154,0.00043227396,0.00002574293,0.0000085281645,0.0000068478685,0.000065370084,0.00003461752,0.00063334766],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999853,0.000042340955,0.0000066566417,0.000019833036,0.000031781787,0.00004626217],"domain_scores_gemma":[0.99952245,0.00015996116,0.00010794403,0.00003556871,0.000060097605,0.00011398508],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00033623562,0.0002830437,0.00031997322,0.0005062531,0.00049970957,0.0006509031,0.00041451387,0.0002392811,0.002862047],"category_scores_gemma":[0.0006303504,0.00028237846,0.00016459018,0.00025659217,0.00064021203,0.00029315587,0.00035158388,0.0003455377,0.0003122804],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0023156162,0.00035259337,0.0032149565,0.00034828417,0.000077256984,0.00048582716,0.0003996576,0.012976561,0.9568778,0.013093494,0.0022336023,0.0076244064],"study_design_scores_gemma":[0.00014928158,0.0004890387,0.014065376,0.000034907032,0.00006320124,0.00019589935,0.00021591346,0.07874215,0.9005886,0.0034952906,0.001861112,0.00009928832],"about_ca_topic_score_codex":0.0022080853,"about_ca_topic_score_gemma":0.0024902176,"teacher_disagreement_score":0.002862047,"about_ca_system_score_codex":0.00047016868,"about_ca_system_score_gemma":0.0003321692,"threshold_uncertainty_score":0.009574473},"labels":[],"label_agreement":null},{"id":"W1995202160","doi":"10.1103/physrevb.66.245306","title":"Theoretical study of photon emission from molecular wires","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Electroluminescence; HOMO/LUMO; Molecular wire; Quantum tunnelling; Molecular orbital; Atomic physics; Fermi level; Photon; Molecule; Emission spectrum; Molecular physics; Chemistry; Spectral line; Materials science; Physics; Condensed matter physics; Nanotechnology; Optics; Electron; Quantum mechanics","score_opus":0.006906250055560898,"score_gpt":0.24403344079010003,"score_spread":0.23712719073453914,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1995202160","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.37478927,0.006345189,0.4239072,0.0030931386,0.00019680722,0.00014219985,0.00038542063,0.00032222638,0.19081847],"genre_scores_gemma":[0.9544567,0.0025638724,0.027776223,0.00027033637,0.00010512387,0.00030290012,0.00014051293,0.00011757214,0.014266773],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997762,0.000059310172,0.0000054210755,0.000018060673,0.00009680038,0.000044347194],"domain_scores_gemma":[0.9996562,0.00021927794,0.00002453936,0.000031722968,0.00004458782,0.000023665558],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006267967,0.00058096234,0.0007547926,0.0010465721,0.0010227335,0.0010145487,0.0012412487,0.0013666266,0.0040522227],"category_scores_gemma":[0.0012896316,0.00037613572,0.0006476291,0.00068853423,0.0015079661,0.0015233989,0.00087043334,0.00066356605,0.0006120151],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00001694736,0.000029036975,0.00016922079,0.000095466785,0.000010704542,0.0001318627,0.00007918628,0.2766995,0.001028721,0.71893954,0.00053098117,0.002268766],"study_design_scores_gemma":[0.000014578282,0.00001993723,0.00010800107,0.000022444523,0.000005640629,0.000048425278,0.000028930177,0.7703011,0.00036686164,0.22789966,0.0011727392,0.000011742903],"about_ca_topic_score_codex":0.0015371982,"about_ca_topic_score_gemma":0.0009874547,"teacher_disagreement_score":0.0040522227,"about_ca_system_score_codex":0.0012846213,"about_ca_system_score_gemma":0.0006095533,"threshold_uncertainty_score":0.013556004},"labels":[],"label_agreement":null},{"id":"W1995326590","doi":"10.1103/physrevb.64.104501","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>c</mml:mi></mml:math>-axis optical sum rule in the Josephson-coupled vortex state","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Plane (geometry); Sum rule in quantum mechanics; Magnetic field; Physics; Condensed matter physics; Field (mathematics); Vortex; Geometry; Mathematics; Quantum mechanics; Pure mathematics; Thermodynamics","score_opus":0.01680336455370635,"score_gpt":0.26656838340262407,"score_spread":0.24976501884891772,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1995326590","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.023033556,0.0011830454,0.09560583,0.005786282,0.0023800542,0.00024281055,0.028266398,0.023863409,0.8196386],"genre_scores_gemma":[0.11933773,0.0022294703,0.08632787,0.0011214577,0.00057856133,0.00032599244,0.025035359,0.00791627,0.75712734],"study_design_codex":"not_applicable","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998565,0.000030526127,0.000010851717,0.000020570722,0.00006597141,0.000015640935],"domain_scores_gemma":[0.9996314,0.00013128054,0.000039755378,0.00006936708,0.000101862905,0.000026273743],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.00025933547,0.00044518957,0.00039808286,0.0009938257,0.0005890847,0.0019069975,0.0007885863,0.0005605539,0.3334578],"category_scores_gemma":[0.00093035237,0.0002574118,0.00026960843,0.0011474901,0.00043786358,0.0015568206,0.00041256702,0.00070381485,0.121635616],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015199659,0.00006465365,0.0003993597,0.00038072115,0.000012716036,0.00021671105,0.00015633454,0.0009367516,0.01184951,0.1346239,0.70835143,0.14285591],"study_design_scores_gemma":[0.00006061105,0.00007247706,0.0027376292,0.000081627375,0.000008565476,0.00054266583,0.00010789003,0.014700743,0.040943336,0.06706158,0.8736287,0.000054212916],"about_ca_topic_score_codex":0.001838233,"about_ca_topic_score_gemma":0.003188828,"teacher_disagreement_score":0.3334578,"about_ca_system_score_codex":0.00068097963,"about_ca_system_score_gemma":0.00031552505,"threshold_uncertainty_score":0.9507415},"labels":[],"label_agreement":null},{"id":"W1996532043","doi":"10.1103/physrevb.65.075315","title":"Hamiltonian approach to the ac Josephson effect in superconducting-normal hybrid systems","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; Hong Kong Government","keywords":"Mesoscopic physics; Physics; Condensed matter physics; Superconductivity; Conductor; Hamiltonian (control theory); Electron; Andreev reflection; Josephson effect; Quantum; Quantum dot; Quantum mechanics; Mathematics","score_opus":0.01781042243215716,"score_gpt":0.2622408526284276,"score_spread":0.24443043019627045,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1996532043","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.3142849,0.0026230814,0.58305496,0.0027479697,0.0003491936,0.000105676416,0.00018053043,0.00025998935,0.09639378],"genre_scores_gemma":[0.95937717,0.0007243108,0.025524704,0.00024738043,0.0002252126,0.00012692164,0.00005213148,0.000056840876,0.013665321],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998908,0.00004130406,0.0000031976028,0.000010758994,0.00003411606,0.000019821875],"domain_scores_gemma":[0.99983454,0.000063561274,0.000015304351,0.000026013204,0.000030425192,0.000030248393],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002939409,0.00027439135,0.00044798537,0.0005829178,0.0007286154,0.0006673752,0.0008480311,0.00076171226,0.0036494583],"category_scores_gemma":[0.00042122905,0.00022811203,0.0003814679,0.00028957054,0.001593265,0.0011716294,0.0007254595,0.0006282476,0.00025095578],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000012067288,0.000027902915,0.00020535047,0.000028753584,0.000016364358,0.0001549254,0.00008017748,0.097895935,0.002629667,0.8959062,0.0006182901,0.0024244164],"study_design_scores_gemma":[0.000018246486,0.000027041011,0.00033613917,0.000007924026,0.0000044843778,0.00006417865,0.0000468326,0.5700873,0.0002806893,0.42753223,0.0015815699,0.000013348791],"about_ca_topic_score_codex":0.001839432,"about_ca_topic_score_gemma":0.0026392732,"teacher_disagreement_score":0.0036494583,"about_ca_system_score_codex":0.00086614524,"about_ca_system_score_gemma":0.0005717496,"threshold_uncertainty_score":0.012208581},"labels":[],"label_agreement":null},{"id":"W1996928163","doi":"10.1103/physrevb.65.104435","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>electron paramagnetic resonance study of a<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YCaAlO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>single crystal: Study of substitutional disorder","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Electron paramagnetic resonance; Crystal (programming language); Ion; Physics; Crystallography; Spectral line; Atomic physics; Nuclear magnetic resonance; Condensed matter physics; Chemistry; Quantum mechanics; Computer science","score_opus":0.017171737662763368,"score_gpt":0.25145653092307535,"score_spread":0.23428479326031199,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1996928163","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0056561143,0.00061275717,0.06338827,0.004083225,0.0013788942,0.00067269785,0.36840966,0.120877296,0.43492103],"genre_scores_gemma":[0.018022483,0.002229036,0.07756243,0.0018803871,0.00019546639,0.0013206906,0.46290603,0.094307736,0.3415758],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9994861,0.000052925596,0.000049749353,0.00007461912,0.00027726826,0.000059233054],"domain_scores_gemma":[0.9992539,0.00017153494,0.00007125255,0.00023813905,0.00017720128,0.00008785008],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.000829042,0.0018189506,0.001404932,0.0016819079,0.001531216,0.0037609108,0.0033233042,0.0017983963,0.5362163],"category_scores_gemma":[0.0021722284,0.0014435092,0.0010400881,0.0033474586,0.0004939229,0.002537355,0.001470191,0.002093406,0.39001927],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017573687,0.000091182665,0.00021215489,0.0003784603,0.000029319832,0.00011046694,0.0000865379,0.00044396243,0.011908787,0.0058578183,0.9425413,0.038164336],"study_design_scores_gemma":[0.00014521294,0.000038987,0.0009849381,0.000065040054,0.00001940337,0.00014747887,0.000060969327,0.0016661801,0.018980088,0.0032050954,0.9746181,0.00006849424],"about_ca_topic_score_codex":0.012317169,"about_ca_topic_score_gemma":0.026795994,"teacher_disagreement_score":0.5362163,"about_ca_system_score_codex":0.0023301046,"about_ca_system_score_gemma":0.0012541148,"threshold_uncertainty_score":0.6615311},"labels":[],"label_agreement":null},{"id":"W1997879477","doi":"10.1103/physrevb.68.094503","title":"Optical symmetries and anisotropic transport in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>superconductors","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Cuprate; Superconductivity; Plane (geometry); Physics; Condensed matter physics; Raman spectroscopy; Anisotropy; Momentum (technical analysis); Geometry; Quantum mechanics; Mathematics","score_opus":0.016918986134577,"score_gpt":0.24867631046239658,"score_spread":0.2317573243278196,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1997879477","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9555486,0.00029178496,0.02501445,0.00024123542,0.00002711754,0.000016746686,0.00010288206,0.00007763791,0.018679613],"genre_scores_gemma":[0.9951499,0.000081046266,0.0030889928,0.000015759857,0.000007325625,0.000008689984,0.00003567575,0.000015764786,0.001596863],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999038,0.000018720204,0.000004245452,0.000015580961,0.000029788913,0.000027767484],"domain_scores_gemma":[0.9997874,0.000043139633,0.000069231646,0.000038941984,0.00004380996,0.000017378501],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018091024,0.00017016096,0.00012320928,0.00039024506,0.00038030613,0.00082790083,0.0002863101,0.00024041583,0.0015119193],"category_scores_gemma":[0.00039600662,0.00016102569,0.0002254819,0.0001852194,0.00068842,0.0006204699,0.0002589372,0.00024949358,0.00024016657],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013441638,0.00010756378,0.0030621588,0.00010683689,0.000015325284,0.0004591751,0.00037425797,0.012969181,0.19805081,0.7713307,0.0017782967,0.0116112055],"study_design_scores_gemma":[0.00009916865,0.00020568748,0.014398899,0.000031344745,0.000024995143,0.0014961894,0.00047013105,0.4788414,0.14616223,0.35226175,0.0059188223,0.00008940415],"about_ca_topic_score_codex":0.0012653159,"about_ca_topic_score_gemma":0.0013602691,"teacher_disagreement_score":0.0015119193,"about_ca_system_score_codex":0.00063645566,"about_ca_system_score_gemma":0.00029679178,"threshold_uncertainty_score":0.005057931},"labels":[],"label_agreement":null},{"id":"W1998706188","doi":"10.1103/physrevb.64.140407","title":"Order in the Heisenberg pyrochlore: The magnetic structure of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Gd</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ti</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":137,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada","funders":"","keywords":"Pyrochlore; Antiferromagnetism; Neutron diffraction; Magnetic structure; Ground state; Physics; Dipole; Ideal (ethics); Condensed matter physics; Order (exchange); Crystallography; Heisenberg model; Diffraction; Chemistry; Quantum mechanics; Magnetization; Magnetic field; Philosophy","score_opus":0.013598399850259011,"score_gpt":0.24786700312525797,"score_spread":0.23426860327499896,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1998706188","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.14899825,0.0040054284,0.3098315,0.005372412,0.0026901383,0.00019753276,0.0026987686,0.00282717,0.52337885],"genre_scores_gemma":[0.6854131,0.003279027,0.11079155,0.0017670596,0.0003974428,0.00026947007,0.0025698945,0.0023666625,0.19314577],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996362,0.00006238368,0.000014226395,0.00007677759,0.00014453937,0.00006593393],"domain_scores_gemma":[0.9997757,0.000041966243,0.000018989773,0.0000682733,0.000065398766,0.000029711447],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040887095,0.00041616036,0.0003957232,0.0006429879,0.0010431748,0.0020102847,0.00078335404,0.0008552709,0.02954691],"category_scores_gemma":[0.0009258779,0.0004907734,0.00030792443,0.0005202985,0.0011667068,0.0022656077,0.00088153814,0.001581241,0.0070834546],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014881123,0.000034690358,0.00018439951,0.0002444437,0.00001305802,0.00016650421,0.00031077486,0.0025650607,0.020446064,0.9265536,0.02847135,0.020861257],"study_design_scores_gemma":[0.00009964272,0.00015586482,0.00074864,0.0000711308,0.000014487791,0.00040298112,0.00024943106,0.016816245,0.048930425,0.7113224,0.22107849,0.00011032746],"about_ca_topic_score_codex":0.0023549586,"about_ca_topic_score_gemma":0.002881699,"teacher_disagreement_score":0.02954691,"about_ca_system_score_codex":0.000902871,"about_ca_system_score_gemma":0.001139396,"threshold_uncertainty_score":0.09884429},"labels":[],"label_agreement":null},{"id":"W1998778489","doi":"10.1103/physrevb.64.024426","title":"Ballistic spin-polarized transport and Rashba spin precession in semiconductor nanowires","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":406,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Rashba effect; Condensed matter physics; Spin transistor; Ballistic conduction; Physics; Spin–orbit interaction; Hamiltonian (control theory); Spin (aerodynamics); Spintronics; Spin polarization; Electron; Conductance; Spin Hall effect; Quantum mechanics; Ferromagnetism","score_opus":0.011326114538615864,"score_gpt":0.3022350065537375,"score_spread":0.2909088920151216,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1998778489","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98750836,0.00015885079,0.0072203665,0.00024477125,0.000021266245,0.000016883481,0.00008605284,0.00007673263,0.004666625],"genre_scores_gemma":[0.9960502,0.00008489455,0.0030981966,0.000023193943,0.0000056495924,0.000025367017,0.00004601278,0.000017538974,0.0006488762],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99987435,0.000040351628,0.000004691621,0.000011319555,0.00003367973,0.00003552844],"domain_scores_gemma":[0.9993973,0.00032922518,0.00006863169,0.000051778265,0.00007961531,0.00007347759],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00051551993,0.0002831662,0.00065452536,0.00036262258,0.0007835459,0.00089355884,0.000651403,0.0009307687,0.0015592164],"category_scores_gemma":[0.0016371679,0.0003755585,0.00025178742,0.00058813376,0.0011290283,0.0007360416,0.0004206843,0.00041800097,0.00018892223],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014755571,0.0000887602,0.0020436936,0.00011826428,0.00004018432,0.00032643526,0.00012551849,0.9619479,0.008006585,0.024834443,0.00036289784,0.001957758],"study_design_scores_gemma":[0.000028620458,0.000028532895,0.00034744042,0.0000049644436,0.0000060563543,0.000016046402,0.000027911618,0.9962799,0.0008426855,0.0022947707,0.00011666599,0.000006441682],"about_ca_topic_score_codex":0.007656268,"about_ca_topic_score_gemma":0.0048962687,"teacher_disagreement_score":0.007656268,"about_ca_system_score_codex":0.0009415572,"about_ca_system_score_gemma":0.0008221301,"threshold_uncertainty_score":0.0152234435},"labels":[],"label_agreement":null},{"id":"W1999274255","doi":"10.1103/physrevb.62.10405","title":"Elastic buckling of single-walled carbon nanotube ropes under high pressure","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":221,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Carbon nanotube; Buckling; Materials science; RADIUS; Elastic modulus; Composite material; Electrical resistivity and conductivity; Nanotube; Vibration; Physics; Acoustics","score_opus":0.01123432795833935,"score_gpt":0.264524127271044,"score_spread":0.2532897993127047,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1999274255","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.95703435,0.00095284,0.034054708,0.00014652337,0.000053762113,0.000051655206,0.000083736326,0.000084717234,0.00753779],"genre_scores_gemma":[0.9923069,0.00059653295,0.0037587662,0.000018940707,0.000024476829,0.00004183223,0.000049843995,0.000014805976,0.0031878354],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998723,0.00001788778,0.000005705089,0.000022289109,0.00005135981,0.000030437022],"domain_scores_gemma":[0.9998553,0.000058031197,0.000031381463,0.000022786586,0.000014055716,0.000018426726],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001365894,0.00035881033,0.00040040736,0.00035702696,0.00040284568,0.00042590368,0.00048163178,0.00065624336,0.0008399856],"category_scores_gemma":[0.00037978528,0.00024646844,0.0004088388,0.0002267232,0.0006250175,0.0007090235,0.00046144132,0.00044853764,0.00018510004],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013683517,0.00012537926,0.0013391585,0.00035931988,0.00006655763,0.0031705757,0.00025900852,0.341771,0.6168069,0.026199026,0.00043535925,0.009330899],"study_design_scores_gemma":[0.000014489029,0.00012961224,0.0016307358,0.000010742748,0.000008220905,0.00040589902,0.000039296607,0.95674413,0.035323814,0.0049120276,0.0007519965,0.000029053976],"about_ca_topic_score_codex":0.0004956106,"about_ca_topic_score_gemma":0.00038045173,"teacher_disagreement_score":0.0008399856,"about_ca_system_score_codex":0.00019254889,"about_ca_system_score_gemma":0.000138636,"threshold_uncertainty_score":0.0028100014},"labels":[],"label_agreement":null},{"id":"W1999937395","doi":"10.1103/physrevb.63.174431","title":"Exchange-dominated spin waves in simple cubic antiferromagnetic films","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University","funders":"Natural Sciences and Engineering Research Council of Canada; Coordenação de Aperfeiçoamento de Pessoal de Nível Superior","keywords":"Antiferromagnetism; Spin wave; Cubic crystal system; Condensed matter physics; Surface (topology); Simple (philosophy); Spin (aerodynamics); Materials science; Operator (biology); Physics; Geometry; Mathematics; Ferromagnetism; Chemistry","score_opus":0.013720799842760296,"score_gpt":0.2932475469236969,"score_spread":0.2795267470809366,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1999937395","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9956956,0.00030025071,0.0009906244,0.000081881175,0.000010086412,0.0000043651785,0.000015337258,0.000021774247,0.002880055],"genre_scores_gemma":[0.9984382,0.00023004392,0.0008110418,0.000009925277,0.000007077174,0.0000032383682,0.000022836291,0.000005265813,0.00047244917],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99996483,0.00000446342,0.0000011093105,0.0000041033045,0.00001685065,0.000008665101],"domain_scores_gemma":[0.9998759,0.000061538434,0.000023837762,0.0000067404803,0.000023055354,0.000008962473],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000070811795,0.0001909331,0.00018123758,0.0005592974,0.00039064555,0.00037395707,0.00022833636,0.0002480231,0.0010705328],"category_scores_gemma":[0.00029895664,0.00015620934,0.000081977385,0.000300805,0.00039629723,0.00026248096,0.00013679899,0.00034148266,0.000084724874],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002636551,0.00009221588,0.0025808257,0.00043684524,0.0000214595,0.0008312246,0.00056500634,0.0036350763,0.96229327,0.016774345,0.0008044981,0.011701656],"study_design_scores_gemma":[0.00017537907,0.0005118641,0.028057456,0.00007577987,0.000059528422,0.0016073772,0.0009524139,0.20388693,0.73820287,0.022999026,0.0034226612,0.00004871834],"about_ca_topic_score_codex":0.0006535626,"about_ca_topic_score_gemma":0.0013541966,"teacher_disagreement_score":0.0010705328,"about_ca_system_score_codex":0.00016316758,"about_ca_system_score_gemma":0.00009229483,"threshold_uncertainty_score":0.0035812855},"labels":[],"label_agreement":null},{"id":"W2000531503","doi":"10.1103/physrevb.64.079902","title":"Erratum: Signal formation in amorphous-Se-based x-ray detectors [Phys. Rev. B. 63, 195204 (2001)]","year":2001,"lang":"en","type":"erratum","venue":"Physical review. B, Condensed matter","topic":"X-ray Spectroscopy and Fluorescence Analysis","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University; University of Alberta","funders":"","keywords":"Amorphous solid; Detector; Physics; X-ray detector; SIGNAL (programming language); X-ray; Materials science; Nuclear physics; Optics; Crystallography; Computer science; Chemistry","score_opus":0.014682916165619073,"score_gpt":0.29577849174851434,"score_spread":0.2810955755828953,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2000531503","genre_codex":"editorial","genre_gemma":"other","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"other","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.003644503,0.007313143,0.015382532,0.07685385,0.87046397,0.00009178616,0.004954846,0.002213412,0.019082041],"genre_scores_gemma":[0.10101967,0.025360815,0.055763673,0.082778595,0.056324687,0.00035647475,0.0207188,0.006387073,0.6512902],"study_design_codex":"not_applicable","study_design_gemma":"not_applicable","domain_scores_codex":[0.9970741,0.0003683408,0.00052194984,0.00044553433,0.0014379605,0.00015215224],"domain_scores_gemma":[0.9909021,0.0022814567,0.00076544686,0.00084822194,0.0048883264,0.00031441223],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0029838188,0.0023661442,0.001759518,0.0025705968,0.0039732624,0.0023643384,0.003560059,0.0057866243,0.05122001],"category_scores_gemma":[0.023093062,0.0015158564,0.0011616423,0.0027937563,0.0015929032,0.0037701067,0.0013435328,0.005135943,0.028901605],"study_design_candidate":"not_applicable","study_design_consensus":"not_applicable","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014857546,0.00003395334,0.00033628722,0.00030222943,0.00003092737,0.00075154915,0.000064286774,0.00025487677,0.0012705703,0.004538038,0.9722386,0.020030044],"study_design_scores_gemma":[0.000100633544,0.00009103264,0.0019965216,0.0003241552,0.00014954283,0.0025730573,0.00016884961,0.0023981528,0.013237483,0.007326527,0.9714398,0.00019436695],"about_ca_topic_score_codex":0.0052314615,"about_ca_topic_score_gemma":0.008010122,"teacher_disagreement_score":0.05122001,"about_ca_system_score_codex":0.0027961843,"about_ca_system_score_gemma":0.0018032771,"threshold_uncertainty_score":0.17134804},"labels":[],"label_agreement":null},{"id":"W2001220402","doi":"10.1103/physrevb.65.140515","title":"Superconductivity in armchair carbon nanotubes","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":51,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Superconductivity; Carbon nanotube; Condensed matter physics; Zigzag; Coulomb; Phonon; Position and momentum space; Renormalization; Physics; Materials science; Nanotechnology; Quantum mechanics","score_opus":0.022162745845980682,"score_gpt":0.2866893697007264,"score_spread":0.26452662385474573,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001220402","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99509734,0.0005906502,0.0015161805,0.0000792466,0.000024063766,0.000007070734,0.000019543788,0.000057627953,0.0026082464],"genre_scores_gemma":[0.99716383,0.00029772532,0.0015397811,0.000016025939,0.000016060854,0.000012087673,0.00003187759,0.000018680841,0.00090392213],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99987125,0.000030695668,0.000004810796,0.000014552693,0.000051583887,0.000027073904],"domain_scores_gemma":[0.99983597,0.00005272645,0.000040973933,0.000015257274,0.000031961546,0.000023059754],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013612625,0.00027540355,0.0003109305,0.000707813,0.0006511627,0.0004968769,0.00025600326,0.0003750131,0.0008767086],"category_scores_gemma":[0.00053257996,0.00015062757,0.0002457565,0.00036454716,0.00047793702,0.00028723283,0.0002513219,0.00021774114,0.00015932854],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00052660925,0.00017654854,0.0056235655,0.00030775697,0.00009983957,0.0014893848,0.00052299426,0.08718204,0.83081365,0.061334707,0.0010658876,0.010857102],"study_design_scores_gemma":[0.00012188468,0.000490992,0.012866942,0.000054319957,0.000080796446,0.00060146354,0.00014263223,0.76987785,0.1729778,0.038933456,0.0037408583,0.0001110302],"about_ca_topic_score_codex":0.0016306271,"about_ca_topic_score_gemma":0.001659594,"teacher_disagreement_score":0.0016306271,"about_ca_system_score_codex":0.000386082,"about_ca_system_score_gemma":0.00025295562,"threshold_uncertainty_score":0.0032422543},"labels":[],"label_agreement":null},{"id":"W2001478888","doi":"10.1103/physrevb.62.4535","title":"Tin-vacancy acceptor levels in electron-irradiated n-type silicon","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Silicon and Solar Cell Technologies","field":"Engineering","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Winnipeg","funders":"","keywords":"Vacancy defect; Atomic physics; Electron; Physics; Conduction band; Tin; Acceptor; Materials science; Condensed matter physics; Nuclear physics","score_opus":0.013684817562350743,"score_gpt":0.2821617887585263,"score_spread":0.2684769711961756,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001478888","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99913675,0.00006826735,0.00025754274,0.000004629315,0.0000029345313,0.000003277183,0.00004878122,0.00000754825,0.0004701947],"genre_scores_gemma":[0.9980509,0.00007853043,0.00036189274,0.000009749917,0.0000015962437,0.0000067770684,0.00017873826,0.0000071219492,0.0013046633],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999293,0.000011663823,0.000004089575,0.000020975931,0.000018492277,0.00001556247],"domain_scores_gemma":[0.9999037,0.00003594613,0.000022334578,0.000007614968,0.000018615663,0.000011813825],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001366784,0.00018349111,0.00014797047,0.00017832128,0.00013350477,0.0002560628,0.00028136128,0.00022415505,0.0013184048],"category_scores_gemma":[0.00018470496,0.00009718831,0.00010177618,0.00014084387,0.00022272088,0.00014920722,0.00012716679,0.00014677978,0.00013013565],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00041809882,0.000046581346,0.0034707522,0.000053562726,0.000025198395,0.00011801485,0.000074375675,0.0012408491,0.9921239,0.00053045084,0.00007584291,0.0018224312],"study_design_scores_gemma":[0.000035550154,0.0008509422,0.0132952705,0.0000111255595,0.00004510315,0.0001285938,0.000105820254,0.005597977,0.97893333,0.000120700795,0.00086552964,0.000010029667],"about_ca_topic_score_codex":0.002077754,"about_ca_topic_score_gemma":0.0031230713,"teacher_disagreement_score":0.002077754,"about_ca_system_score_codex":0.00043379376,"about_ca_system_score_gemma":0.00019644844,"threshold_uncertainty_score":0.0044104457},"labels":[],"label_agreement":null},{"id":"W2001618367","doi":"10.1103/physrevb.61.8726","title":"Pressure-induced structural changes in ZnS","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Chalcogenide Semiconductor Thin Films","field":"Engineering","cited_by":117,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"","keywords":"Wurtzite crystal structure; Orthorhombic crystal system; Materials science; Condensed matter physics; Crystallography; Diffraction; Compressibility; Equation of state; Zinc; Thermodynamics; Physics; Crystal structure; Chemistry; Optics","score_opus":0.015185659981251091,"score_gpt":0.27904241258572526,"score_spread":0.26385675260447417,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001618367","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9986884,0.0000596971,0.00043794766,0.000016686188,0.0000018394683,0.0000017279679,0.0002118328,0.000027662676,0.0005542993],"genre_scores_gemma":[0.99892884,0.00006279889,0.00026319645,0.0000032715363,0.0000014855262,0.000004062324,0.00033265504,0.000009397315,0.00039427658],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991107,0.00000381379,0.000003512366,0.000016289772,0.000048855214,0.000016521368],"domain_scores_gemma":[0.9999416,0.000012075907,0.000018956804,0.00000755361,0.000013664195,0.000006173066],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000056781988,0.00020109197,0.00017027589,0.00024942198,0.0002920793,0.00031581937,0.00043769059,0.0001570704,0.0022561883],"category_scores_gemma":[0.00021774674,0.00019636417,0.0001535198,0.00030772138,0.00035757743,0.00030488757,0.00033044934,0.00023116745,0.00018135202],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00032666317,0.000040390853,0.0068881246,0.00011747163,0.000028313418,0.0002263144,0.00022827394,0.0059613995,0.97777724,0.0027636748,0.00020930442,0.0054327818],"study_design_scores_gemma":[0.00006586983,0.00026380518,0.043672424,0.000010703211,0.000016887467,0.00025959712,0.00021254322,0.024700217,0.9252428,0.0017027038,0.0038192987,0.00003320939],"about_ca_topic_score_codex":0.0019520127,"about_ca_topic_score_gemma":0.0019000762,"teacher_disagreement_score":0.0022561883,"about_ca_system_score_codex":0.0005682934,"about_ca_system_score_gemma":0.00015439281,"threshold_uncertainty_score":0.0075476766},"labels":[],"label_agreement":null},{"id":"W2001713138","doi":"10.1103/physrevb.64.064101","title":"Time evolution of tetragonal-orthorhombic ferroelastics","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Shape Memory Alloy Transformations","field":"Materials Science","cited_by":38,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Nucleation; Tetragonal crystal system; Nucleus; Orthorhombic crystal system; Phase transition; Domain (mathematical analysis); Condensed matter physics; Physics; Phase (matter); Classical mechanics; Materials science; Mathematics; Thermodynamics; Mathematical analysis; Biology; Quantum mechanics; Diffraction","score_opus":0.012006448370981037,"score_gpt":0.2853668380493264,"score_spread":0.27336038967834536,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001713138","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9906042,0.00009942981,0.0059499335,0.000083278115,0.000011652264,0.000011137951,0.000078459314,0.000076571014,0.0030853676],"genre_scores_gemma":[0.9964631,0.000041033283,0.0026518905,0.000010005551,0.0000034250324,0.000013964253,0.00008719572,0.000023096483,0.00070614635],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.9999448,0.000009294071,0.000002422936,0.0000110933115,0.000012277467,0.000020083946],"domain_scores_gemma":[0.9995859,0.00014966485,0.00009461189,0.00003128631,0.000056395966,0.000082195445],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017026321,0.00018698284,0.00021540918,0.00037312577,0.00033804824,0.00064775435,0.0003792909,0.00045298765,0.0017337888],"category_scores_gemma":[0.0015473025,0.00024918572,0.00022651535,0.00027265068,0.0006086575,0.0006372884,0.00028150942,0.00029548234,0.00010954848],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00029387546,0.00014617767,0.020891406,0.00013994059,0.00007949521,0.00084157323,0.00042772884,0.8458874,0.0577524,0.06028967,0.0015492679,0.0117010195],"study_design_scores_gemma":[0.000023278546,0.000028557504,0.003898505,0.000004787609,0.000005005361,0.00005236,0.00005689985,0.98814976,0.0037735333,0.00351766,0.0004761809,0.000013525601],"about_ca_topic_score_codex":0.003319016,"about_ca_topic_score_gemma":0.003064394,"teacher_disagreement_score":0.003319016,"about_ca_system_score_codex":0.00062013883,"about_ca_system_score_gemma":0.00034448647,"threshold_uncertainty_score":0.0065994263},"labels":[],"label_agreement":null},{"id":"W2001852408","doi":"10.1103/physrevb.61.14531","title":"<i>Ab initio</i>studies on the vibrational and thermal properties of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Al</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">Li</mml:mi></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Thermodynamic and Structural Properties of Metals and Alloys","field":"Engineering","cited_by":52,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences","funders":"","keywords":"Pseudopotential; Phonon; Ab initio; Heat capacity; Thermal expansion; Physics; Thermodynamics; Orientation (vector space); Specific heat; Materials science; Condensed matter physics; Atomic physics; Quantum mechanics; Geometry; Mathematics","score_opus":0.019224088318751605,"score_gpt":0.23525797863441394,"score_spread":0.21603389031566234,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001852408","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8569087,0.0041824128,0.051973484,0.00080126675,0.0002242465,0.00013143856,0.0024946393,0.0011768887,0.08210697],"genre_scores_gemma":[0.96599966,0.0017340695,0.023709426,0.00012363595,0.000070299204,0.00016900321,0.0016932522,0.000301488,0.0061992556],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997789,0.0000335935,0.000007062281,0.000020673591,0.00012282019,0.000036909674],"domain_scores_gemma":[0.99965703,0.000111261215,0.00003887776,0.000077476725,0.00009641343,0.000018962168],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042785818,0.00061736506,0.00088654284,0.00094408507,0.0016746919,0.0006237954,0.0014537098,0.00083318865,0.006377642],"category_scores_gemma":[0.000617353,0.00044856826,0.00072736,0.0014294364,0.00069416396,0.000840297,0.00043717082,0.00090149225,0.0012770991],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00033204217,0.00038847365,0.0030694932,0.0043378263,0.0002155406,0.0005229743,0.0008932576,0.6018018,0.13021247,0.19627476,0.017196512,0.044754863],"study_design_scores_gemma":[0.000041204057,0.00012777094,0.0022155533,0.000086033855,0.000039376926,0.00007767716,0.0001607793,0.94017994,0.042729363,0.00918903,0.0050885556,0.00006473955],"about_ca_topic_score_codex":0.009406123,"about_ca_topic_score_gemma":0.010586444,"teacher_disagreement_score":0.009406123,"about_ca_system_score_codex":0.0010954312,"about_ca_system_score_gemma":0.00073701056,"threshold_uncertainty_score":0.021335304},"labels":[],"label_agreement":null},{"id":"W2001866072","doi":"10.1103/physrevb.65.176402","title":"Reply to “Comment on ‘Field dependence of the transverse spin freezing transition’ ”","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced NMR Techniques and Applications","field":"Chemistry","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Condensed matter physics; Field (mathematics); Physics; Muon spin spectroscopy; Relaxation (psychology); Mössbauer spectroscopy; Spectroscopy; Transverse field; Spin (aerodynamics); Muon; Quantum mechanics; Nuclear physics; Superconductivity; Mathematics; Thermodynamics; Medicine","score_opus":0.022318110411164962,"score_gpt":0.31659463599961274,"score_spread":0.2942765255884478,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001866072","genre_codex":"commentary","genre_gemma":"commentary","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"commentary","genre_consensus":"commentary","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.00022292255,0.0010508115,0.0001840117,0.9659837,0.031627104,0.000010862817,0.00011853979,0.00007491099,0.0007271141],"genre_scores_gemma":[0.0010945181,0.00038534444,0.00013211307,0.980995,0.01543822,0.000026420497,0.000030658866,0.000021639014,0.0018761427],"study_design_codex":"not_applicable","study_design_gemma":"not_applicable","domain_scores_codex":[0.9963154,0.00064745115,0.00056803285,0.0008140265,0.0011276909,0.0005273318],"domain_scores_gemma":[0.9878159,0.006472742,0.0011604402,0.00041340222,0.0029796346,0.0011578077],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0060103405,0.0015245548,0.0015447307,0.0011170576,0.0039238706,0.0031605347,0.0050987178,0.052140765,0.009125935],"category_scores_gemma":[0.027303305,0.0014238857,0.0019201135,0.0010539889,0.005121617,0.0050158403,0.0030302815,0.045626614,0.010883508],"study_design_candidate":"not_applicable","study_design_consensus":"not_applicable","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000034285276,0.000012808001,0.00017866028,0.000053296688,0.000012468756,0.00020601969,0.0000875617,0.000035319063,0.0001458486,0.0009901982,0.99650574,0.0017378107],"study_design_scores_gemma":[0.00009600107,0.000065386055,0.0030140944,0.00023298814,0.000049718186,0.00066139176,0.0004905259,0.00034971256,0.0011043455,0.005993228,0.98780686,0.00013572618],"about_ca_topic_score_codex":0.011665122,"about_ca_topic_score_gemma":0.014262881,"teacher_disagreement_score":0.052140765,"about_ca_system_score_codex":0.0038873835,"about_ca_system_score_gemma":0.0037387665,"threshold_uncertainty_score":0.031786084},"labels":[],"label_agreement":null},{"id":"W2001868013","doi":"10.1103/physrevb.63.085203","title":"Nonequilibrium carriers in GaAs grown by low-temperature molecular beam epitaxy","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Molecular beam epitaxy; Materials science; Hall effect; Optoelectronics; Epitaxy; Condensed matter physics; Non-equilibrium thermodynamics; Molecular beam; Electrical resistivity and conductivity; Beam (structure); Charge carrier; Voltage; Conductivity; Nanotechnology; Optics; Physics; Chemistry; Thermodynamics; Physical chemistry; Molecule","score_opus":0.005135525613650393,"score_gpt":0.26707443513097584,"score_spread":0.26193890951732546,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2001868013","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99832135,0.0003635431,0.0008755755,0.00003838402,0.000004742387,0.0000018617009,0.000038173235,0.0000123184245,0.00034410573],"genre_scores_gemma":[0.9985676,0.00019203573,0.0005277477,0.0000062126014,0.000002042906,0.0000030208985,0.000046882364,0.0000062424274,0.0006482474],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999547,0.000005987888,0.0000017412508,0.000010313565,0.000015704487,0.00001148106],"domain_scores_gemma":[0.999913,0.000040067156,0.000014029489,0.000007747346,0.000014572021,0.0000106262505],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011536632,0.00011636766,0.00017816544,0.00019438303,0.00026523587,0.0005133359,0.00031892586,0.00027184238,0.0004355824],"category_scores_gemma":[0.0004313175,0.00016593147,0.00009755071,0.00019195826,0.00031485103,0.00035203496,0.00013476473,0.000230201,0.00010923097],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00029614914,0.00009598559,0.009807151,0.00011156739,0.000028897739,0.00060457765,0.00027339553,0.03210413,0.93928754,0.012086332,0.00026327118,0.005040947],"study_design_scores_gemma":[0.00009108235,0.00040280636,0.04570776,0.000025078314,0.000051562678,0.00037728364,0.00022640158,0.359558,0.5840211,0.0071377316,0.0023570494,0.000044121818],"about_ca_topic_score_codex":0.00594241,"about_ca_topic_score_gemma":0.007502961,"teacher_disagreement_score":0.00594241,"about_ca_system_score_codex":0.00083430763,"about_ca_system_score_gemma":0.00023313072,"threshold_uncertainty_score":0.011815608},"labels":[],"label_agreement":null},{"id":"W2003922304","doi":"10.1103/physrevb.67.155328","title":"Thermopower of a double quantum well based on GaAs","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences; Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada; Université de Sherbrooke","keywords":"Condensed matter physics; Seebeck coefficient; Phonon drag; Quantum well; Resonance (particle physics); Phonon; Physics; Fermi gas; Electron; Electrical resistivity and conductivity; Materials science; Atomic physics; Quantum mechanics","score_opus":0.010664571669352788,"score_gpt":0.2762781056428147,"score_spread":0.2656135339734619,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2003922304","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99841833,0.000072034025,0.0007820059,0.000027928905,0.000009908094,0.0000019730405,0.00004037226,0.0000249801,0.0006225025],"genre_scores_gemma":[0.999241,0.000036850925,0.00043280664,0.0000052314094,0.0000019133975,0.0000026452042,0.0000189104,0.000003989407,0.00025668563],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998939,0.000009336113,0.000004175659,0.00003428335,0.00003427753,0.000023961795],"domain_scores_gemma":[0.99986124,0.000041388677,0.00002604853,0.0000183805,0.000025841282,0.000027013515],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012976774,0.00024217373,0.0003799108,0.00025398246,0.00022609782,0.0004994722,0.0002795572,0.00040851833,0.0011995432],"category_scores_gemma":[0.00028578538,0.00016232618,0.00018847891,0.00025611263,0.0003445545,0.00037381417,0.0002531769,0.0001941204,0.00016383608],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00031160683,0.00006805512,0.0018657856,0.00007663333,0.00004454285,0.00043358147,0.00008280707,0.021537427,0.9710497,0.0022870125,0.00013357471,0.0021092517],"study_design_scores_gemma":[0.00012150867,0.0016393928,0.013134844,0.00004583702,0.000101981925,0.00041611717,0.00014203039,0.41907573,0.5622533,0.0015807545,0.001404022,0.000084397194],"about_ca_topic_score_codex":0.0011166029,"about_ca_topic_score_gemma":0.001426406,"teacher_disagreement_score":0.0011995432,"about_ca_system_score_codex":0.00043669227,"about_ca_system_score_gemma":0.00019234007,"threshold_uncertainty_score":0.0040128827},"labels":[],"label_agreement":null},{"id":"W2005934644","doi":"10.1103/physrevb.64.104508","title":"Nonlinear transport theory for hybrid normal-superconducting devices","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; Hong Kong Government; Peking University","keywords":"Superconductivity; Nonlinear system; Condensed matter physics; Physics; Materials science; Quantum mechanics","score_opus":0.01939649241551625,"score_gpt":0.2981286441299707,"score_spread":0.2787321517144544,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2005934644","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.15822117,0.004537232,0.61621386,0.003307316,0.0005761631,0.00016114966,0.00029448365,0.00035015048,0.21633849],"genre_scores_gemma":[0.9194814,0.002016385,0.03447915,0.00059107353,0.0003860723,0.00021198014,0.0001447615,0.000088966146,0.042600226],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998542,0.000028740347,0.0000071667737,0.000014321435,0.00007802749,0.00001748553],"domain_scores_gemma":[0.99986434,0.000036242873,0.000013300903,0.000021491876,0.00004981471,0.000014783003],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003551722,0.00036887155,0.00039690573,0.00071692246,0.00060314575,0.0008993192,0.0006618453,0.00066566584,0.0028374973],"category_scores_gemma":[0.00048611313,0.0001537599,0.00037793844,0.0003790375,0.0012201007,0.0012150216,0.0006228817,0.000595137,0.00045766612],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000078932235,0.000012623337,0.000064488,0.000030480833,0.0000061669734,0.00005700579,0.000063291125,0.0149039095,0.0034366974,0.9792931,0.0006293418,0.0014950589],"study_design_scores_gemma":[0.000012270282,0.00002386361,0.00018884375,0.00001626032,0.000007559198,0.00012730372,0.000032415992,0.34540775,0.00093448436,0.64726764,0.005967163,0.000014438084],"about_ca_topic_score_codex":0.0013605723,"about_ca_topic_score_gemma":0.0011651814,"teacher_disagreement_score":0.0028374973,"about_ca_system_score_codex":0.0012492785,"about_ca_system_score_gemma":0.00049263577,"threshold_uncertainty_score":0.009492397},"labels":[],"label_agreement":null},{"id":"W2007021596","doi":"10.1103/physrevb.66.052504","title":"Quasiparticle charge in superconductors: Effect of Mott physics or hidden order parameter","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Quasiparticle; Physics; Condensed matter physics; Superconductivity; Cuprate; Mott insulator; Renormalization; Superfluidity; Charge density wave; Antiferromagnetism; Charge (physics); Order (exchange); Quantum mechanics","score_opus":0.027575530456214498,"score_gpt":0.3012504299131759,"score_spread":0.27367489945696144,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007021596","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9773816,0.0011080364,0.01541624,0.00052691315,0.000064675056,0.000014622747,0.000029087794,0.00017826627,0.005280596],"genre_scores_gemma":[0.9969625,0.00033350597,0.0021044454,0.000024868426,0.000021409362,0.00000819517,0.000010239226,0.00003598901,0.0004989739],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99991214,0.00002584048,0.0000033191272,0.00000943081,0.000027489687,0.000021752623],"domain_scores_gemma":[0.9991518,0.0004870612,0.00010174105,0.00013322421,0.000049984195,0.00007614189],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005466726,0.00038524778,0.00043968906,0.0009231925,0.00034846636,0.00082712737,0.00055993744,0.00044367375,0.0014891671],"category_scores_gemma":[0.0022793012,0.00022255277,0.0004371421,0.00040853312,0.0017352344,0.0010852851,0.00050510373,0.0005484926,0.00012362612],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00049024523,0.00019150718,0.012097204,0.00052583753,0.00009921816,0.0012207972,0.00082493876,0.104920276,0.14469863,0.7101056,0.0012367988,0.023588944],"study_design_scores_gemma":[0.00011189741,0.00022702084,0.015746115,0.00008194017,0.00008532423,0.0007682668,0.00014257662,0.7125159,0.05149064,0.21705492,0.001639138,0.00013620997],"about_ca_topic_score_codex":0.0006249662,"about_ca_topic_score_gemma":0.00091618404,"teacher_disagreement_score":0.0014891671,"about_ca_system_score_codex":0.0003518466,"about_ca_system_score_gemma":0.00032591118,"threshold_uncertainty_score":0.004981756},"labels":[],"label_agreement":null},{"id":"W2007311104","doi":"10.1103/physrevb.65.195421","title":"Instability and decomposition on the surface of strained alloy films","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Fluid Dynamics and Thin Films","field":"Engineering","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Materials science; Instability; Alloy; Annealing (glass); Non-equilibrium thermodynamics; Lattice (music); Condensed matter physics; Asymmetry; Free surface; Ultimate tensile strength; Lattice constant; Composite material; Thermodynamics; Optics; Mechanics; Diffraction; Physics","score_opus":0.013431536217827403,"score_gpt":0.24982686074821955,"score_spread":0.23639532453039214,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007311104","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.82341504,0.0003916033,0.16587916,0.0002075378,0.000029177212,0.00004633224,0.00010386072,0.00012307236,0.009804308],"genre_scores_gemma":[0.9865928,0.00012438287,0.0081023015,0.000025702613,0.000014682834,0.000039085953,0.00007003606,0.000025828866,0.005005195],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992836,0.00001395374,0.0000027777053,0.000015451538,0.000026032174,0.000013450185],"domain_scores_gemma":[0.99988854,0.00003635262,0.00001898105,0.000013140558,0.000026544707,0.00001639715],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012616767,0.0003682988,0.00025535192,0.0004702102,0.00030336072,0.0005540993,0.00045945236,0.0005038761,0.000865993],"category_scores_gemma":[0.00038930817,0.00019831538,0.00041091867,0.00012911147,0.0006288778,0.0006198809,0.00037845134,0.00036529527,0.00016078021],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00022379463,0.000115944575,0.004762767,0.00010974701,0.00006574496,0.00075373764,0.00029599186,0.4079208,0.4293966,0.14435917,0.0005512535,0.011444387],"study_design_scores_gemma":[0.0000079093825,0.000016665845,0.0006122016,0.0000020033478,0.0000025879374,0.000051124385,0.00001091905,0.9874429,0.006896315,0.0047183814,0.00023325793,0.0000056611743],"about_ca_topic_score_codex":0.0015644721,"about_ca_topic_score_gemma":0.00069989625,"teacher_disagreement_score":0.0015644721,"about_ca_system_score_codex":0.00055546616,"about_ca_system_score_gemma":0.00021822874,"threshold_uncertainty_score":0.0040302277},"labels":[],"label_agreement":null},{"id":"W2007686356","doi":"10.1103/physrevb.65.125407","title":"Structures of exfoliated single layers of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">WS</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>,</mml:mo></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MoS</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>,</mml:mo></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MoSe</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>in aqueous suspension","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"2D Materials and Applications","field":"Materials Science","cited_by":334,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Basic Energy Sciences; Natural Sciences and Engineering Research Council of Canada; U.S. Department of Energy","keywords":"X-ray absorption fine structure; Materials science; Crystallography; Diffraction; Metal; Scattering; X-ray crystallography; Physics; Spectroscopy; Chemistry; Optics","score_opus":0.019134992520440545,"score_gpt":0.25080106113838657,"score_spread":0.23166606861794603,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007686356","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8045667,0.0040273024,0.025958244,0.0014672949,0.0018412734,0.0001360779,0.018434327,0.0037093947,0.13985926],"genre_scores_gemma":[0.8835936,0.0018888339,0.02738559,0.00033796128,0.00007888202,0.00032836804,0.014656671,0.0010227507,0.070707336],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998117,0.0000062998142,0.000009541319,0.000048182574,0.000078,0.000046318524],"domain_scores_gemma":[0.99977595,0.000028757644,0.000043218904,0.00004054171,0.000071354196,0.000040142437],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013971732,0.00058537314,0.00037907853,0.00044920345,0.00075354846,0.0010447387,0.0010502522,0.0013970229,0.019896686],"category_scores_gemma":[0.00035744024,0.0006257017,0.00033900645,0.00053582067,0.0003824939,0.00084310817,0.00034442294,0.0012611048,0.0039207167],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004504306,0.00019687795,0.0010649716,0.001178512,0.00009475234,0.0009356617,0.00055744697,0.008652805,0.91706026,0.016440336,0.03649457,0.016873365],"study_design_scores_gemma":[0.000116879506,0.00045849243,0.008936377,0.00018821463,0.00011696469,0.0005917883,0.000837045,0.02093094,0.86634624,0.003074595,0.098245434,0.00015695866],"about_ca_topic_score_codex":0.0042686905,"about_ca_topic_score_gemma":0.0074464306,"teacher_disagreement_score":0.019896686,"about_ca_system_score_codex":0.0011417543,"about_ca_system_score_gemma":0.0006004542,"threshold_uncertainty_score":0.06656104},"labels":[],"label_agreement":null},{"id":"W2007739389","doi":"10.1103/physrevb.63.094110","title":"Statics and dynamics of domain patterns in hexagonal-orthorhombic ferroelastics","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Acoustic Wave Resonator Technologies","field":"Engineering","cited_by":31,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Statics; Orthorhombic crystal system; Condensed matter physics; Elasticity (physics); Physics; Materials science; Classical mechanics; Mathematics; Diffraction; Thermodynamics; Quantum mechanics","score_opus":0.007381488539380927,"score_gpt":0.25702008797324993,"score_spread":0.249638599433869,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007739389","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9921673,0.00006804461,0.0053629116,0.00004527244,0.000005471046,0.0000047098815,0.00002904333,0.000030147079,0.002287101],"genre_scores_gemma":[0.997837,0.00004342036,0.0010679209,0.000005988899,0.0000040225937,0.000004560757,0.000035394456,0.0000079928905,0.0009937675],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999554,0.00000525066,0.0000018285813,0.000009424393,0.000012625215,0.000015501522],"domain_scores_gemma":[0.99982196,0.000026818529,0.000057456014,0.000018765306,0.00003339836,0.0000416338],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0000822084,0.00009528026,0.00013641929,0.0004129601,0.00027884782,0.00034342293,0.00022812375,0.00015907716,0.0011419653],"category_scores_gemma":[0.00061271753,0.00013438144,0.00010870238,0.0002048209,0.00055831333,0.00043247791,0.00023824167,0.00017365372,0.00012692582],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038977095,0.00027872733,0.05590484,0.00022881787,0.00009837656,0.0014387753,0.0022643728,0.23373367,0.45662618,0.18379602,0.0030639737,0.062176555],"study_design_scores_gemma":[0.000041955125,0.00013954758,0.047819242,0.000018234012,0.000015572477,0.00042652927,0.0005122284,0.87948406,0.03902167,0.029007738,0.0034717005,0.00004149082],"about_ca_topic_score_codex":0.00124687,"about_ca_topic_score_gemma":0.001133696,"teacher_disagreement_score":0.00124687,"about_ca_system_score_codex":0.00031102478,"about_ca_system_score_gemma":0.00015407296,"threshold_uncertainty_score":0.0038202405},"labels":[],"label_agreement":null},{"id":"W2007995162","doi":"10.1103/physrevb.67.144511","title":"Formation of stripes and incommensurate peaks in the orthorhombic phase of underdoped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Lethbridge","funders":"","keywords":"Orthorhombic crystal system; Condensed matter physics; Tetragonal crystal system; Physics; Phase boundary; Phase (matter); Anisotropy; Spin (aerodynamics); Doping; Crystallography; Quantum mechanics; Diffraction; Chemistry; Thermodynamics","score_opus":0.019889270600701628,"score_gpt":0.25868258788965043,"score_spread":0.23879331728894881,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007995162","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9923901,0.00046790284,0.0004935695,0.00027711436,0.000067840214,0.000009919787,0.0005166039,0.00022734994,0.005549637],"genre_scores_gemma":[0.9961325,0.00022021792,0.000497913,0.00009276247,0.000015268697,0.000022676297,0.00071999145,0.00010044603,0.0021982437],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997968,0.00001837688,0.000008500782,0.000040692386,0.000056881407,0.0000788044],"domain_scores_gemma":[0.99972564,0.000056015586,0.000077243,0.000037910213,0.000049073402,0.000054082568],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014623663,0.00044462588,0.0005133447,0.00068820524,0.00069542596,0.0008998322,0.0007234901,0.0006769642,0.0050044875],"category_scores_gemma":[0.00050324586,0.00048806876,0.00018139249,0.00079894153,0.0006830313,0.00045288904,0.00031666207,0.0009374915,0.00045521997],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009835287,0.0001200777,0.0015480198,0.00036632718,0.00004434016,0.0007350762,0.00065214484,0.00035382033,0.98384213,0.0021803956,0.0044147,0.004759453],"study_design_scores_gemma":[0.00014194105,0.0004090291,0.048872672,0.00007384149,0.00005798511,0.0004409864,0.0013634108,0.0073111937,0.93532705,0.0008229907,0.005110663,0.000068205],"about_ca_topic_score_codex":0.0034024946,"about_ca_topic_score_gemma":0.0035849446,"teacher_disagreement_score":0.0050044875,"about_ca_system_score_codex":0.00048303982,"about_ca_system_score_gemma":0.00033777248,"threshold_uncertainty_score":0.016741693},"labels":[],"label_agreement":null},{"id":"W2008534523","doi":"10.1103/physrevb.68.245320","title":"Vacuum-field Rabi splitting in quantum-well infrared photodetectors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Strong Light-Matter Interactions","field":"Physics and Astronomy","cited_by":51,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Photocurrent; Infrared; Physics; Rabi frequency; Optoelectronics; Field (mathematics); Rabi cycle; Quantum well; Absorption (acoustics); Photodetector; Reflection (computer programming); Waveguide; Atomic physics; Optics; Materials science; Quantum; Laser; Quantum mechanics","score_opus":0.010697019085417307,"score_gpt":0.30592350011905206,"score_spread":0.29522648103363475,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2008534523","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9859255,0.0009832197,0.009172813,0.00011835347,0.000013427656,0.000011339227,0.00004393355,0.00013809068,0.0035934031],"genre_scores_gemma":[0.99704915,0.0001744688,0.0021163258,0.00001410376,0.0000043963046,0.000008348284,0.00001462881,0.0000072528237,0.0006112931],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997398,0.000054334167,0.0000094802635,0.000046402027,0.000108172804,0.000041716423],"domain_scores_gemma":[0.9997594,0.00010998411,0.000044802913,0.00002334715,0.000037040758,0.000025396514],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004033558,0.0002071206,0.00026174125,0.00034800026,0.00029628375,0.0006023989,0.00062918145,0.00036688638,0.000589561],"category_scores_gemma":[0.00053038745,0.00029773384,0.00013119583,0.0003660863,0.00061904197,0.0006355252,0.0003112244,0.0004520768,0.00017261994],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021936893,0.00006783372,0.0014560038,0.00008043041,0.000016183018,0.00014679763,0.00019524385,0.0011124049,0.9688677,0.017989352,0.00017769696,0.009671016],"study_design_scores_gemma":[0.00007077252,0.00020615874,0.002868703,0.000017462116,0.00002066188,0.0002938605,0.00007307759,0.020164719,0.9694108,0.0051048947,0.00174026,0.00002872659],"about_ca_topic_score_codex":0.00034298073,"about_ca_topic_score_gemma":0.0005649964,"teacher_disagreement_score":0.00062918145,"about_ca_system_score_codex":0.00042897,"about_ca_system_score_gemma":0.00017300653,"threshold_uncertainty_score":0.0031124353},"labels":[],"label_agreement":null},{"id":"W2008802125","doi":"10.1103/physrevb.67.085318","title":"Continuum bound states as surface states of a finite periodic system","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Surface and Thin Film Phenomena","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Bound state; Physics; Transfer matrix; Periodic system; State (computer science); Ground state; Quantum mechanics; Mathematical analysis; Mathematics","score_opus":0.008336951769335294,"score_gpt":0.2693150925028508,"score_spread":0.2609781407335155,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2008802125","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.86266917,0.0010684788,0.09336271,0.0007846171,0.00015478968,0.00005506169,0.0000742381,0.00026492623,0.041566037],"genre_scores_gemma":[0.98853475,0.00016414201,0.008126573,0.000086193475,0.000031849282,0.000047792695,0.000032715663,0.000049049497,0.002927013],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99986684,0.000029349496,0.0000047589597,0.000022460332,0.00003588107,0.000040642295],"domain_scores_gemma":[0.9996581,0.00014833055,0.00003980519,0.000062385596,0.000026565076,0.00006474393],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002937042,0.00028286752,0.00042129308,0.00069736456,0.0012269007,0.001949123,0.0010023668,0.001130661,0.005363955],"category_scores_gemma":[0.00077974907,0.00025701133,0.00041114533,0.00039840312,0.002482598,0.002006751,0.0011705289,0.0011364542,0.00040213563],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006310726,0.00009730196,0.001043939,0.0000879092,0.000016395186,0.00053011376,0.00046923215,0.03841602,0.01531329,0.93891746,0.00090945716,0.004135856],"study_design_scores_gemma":[0.000042988493,0.00009521882,0.0010092225,0.00003290728,0.000019114981,0.00031466575,0.0003098952,0.4420155,0.004748419,0.5490254,0.0023360783,0.000050539715],"about_ca_topic_score_codex":0.0005701839,"about_ca_topic_score_gemma":0.00032246168,"teacher_disagreement_score":0.005363955,"about_ca_system_score_codex":0.00055238674,"about_ca_system_score_gemma":0.00024858513,"threshold_uncertainty_score":0.017944157},"labels":[],"label_agreement":null},{"id":"W2008973487","doi":"10.1103/physrevb.65.115308","title":"Two-component approach for thermodynamic properties in diluted magnetic semiconductors","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"ZnO doping and properties","field":"Materials Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Isaac Newton Institute for Mathematical Sciences; Aspen Center for Physics; National Science Foundation","keywords":"Spins; Magnetization; Component (thermodynamics); Magnetic semiconductor; Semiconductor; Coupling (piping); Interpretation (philosophy); Homogeneous; Condensed matter physics; Thermodynamics; Simple (philosophy); Materials science; Specific heat; Magnetic field; Physics; Statistical physics; Quantum mechanics; Computer science","score_opus":0.04187514871941681,"score_gpt":0.2745960389873601,"score_spread":0.23272089026794332,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2008973487","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.17562346,0.0028923373,0.7859048,0.0014261825,0.00044721307,0.00030193647,0.00036721476,0.00038190014,0.032654952],"genre_scores_gemma":[0.89577615,0.0019224451,0.08353258,0.0003797299,0.00027976627,0.00047950036,0.0001607548,0.00019623325,0.017272813],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998247,0.000052315438,0.000008374669,0.000028320497,0.00006340113,0.0000229685],"domain_scores_gemma":[0.9997845,0.0001011308,0.000021244006,0.00003175877,0.000040790615,0.000020653923],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042084733,0.00086173124,0.0007958198,0.0009834957,0.00045526316,0.00091343577,0.0014005477,0.00073990005,0.00187118],"category_scores_gemma":[0.001024324,0.00030265786,0.0008904889,0.00039004683,0.0009307022,0.0012505089,0.00073323736,0.0007264349,0.000462649],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007876543,0.00012031411,0.0007517474,0.00018607407,0.000068676585,0.00041710603,0.0002108941,0.346802,0.04344476,0.59696746,0.00079883164,0.010153411],"study_design_scores_gemma":[0.000014660319,0.000030569707,0.00017457065,0.000009154249,0.000012394111,0.00005832987,0.00001807113,0.918255,0.002400831,0.077155076,0.0018530401,0.000018331497],"about_ca_topic_score_codex":0.0016957087,"about_ca_topic_score_gemma":0.0013037713,"teacher_disagreement_score":0.00187118,"about_ca_system_score_codex":0.0012482759,"about_ca_system_score_gemma":0.00050032564,"threshold_uncertainty_score":0.009056866},"labels":[],"label_agreement":null},{"id":"W2009329666","doi":"10.1103/physrevb.62.9900","title":"High-pressure bct to fcc structural transformation in Ga","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Metal and Thin Film Mechanics","field":"Engineering","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences","funders":"","keywords":"Pseudopotential; Phonon; Condensed matter physics; Phase (matter); Electronic structure; Equation of state; Materials science; Plane wave; Transformation (genetics); Plane (geometry); Phase transition; High pressure; Physics; Thermodynamics; Quantum mechanics; Chemistry","score_opus":0.006657374675362081,"score_gpt":0.24776005444735666,"score_spread":0.24110267977199457,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2009329666","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9964026,0.00010206999,0.00038186868,0.00010616668,0.000010959522,0.000005425424,0.000043327815,0.000024423947,0.0029232153],"genre_scores_gemma":[0.9994029,0.000045425466,0.00016089805,0.000009799719,0.0000023210516,0.0000033114436,0.00003313483,0.0000040396103,0.00033821887],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999403,0.000004937462,0.0000013677808,0.000006742579,0.00003246163,0.000014319512],"domain_scores_gemma":[0.9999629,0.000011120672,0.0000051232496,0.0000059004356,0.000011117025,0.0000037847115],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000045791232,0.00007307059,0.000112498434,0.00016362222,0.00035515273,0.0003775161,0.00023642193,0.00023536776,0.001246137],"category_scores_gemma":[0.00038399492,0.00010109252,0.00007933768,0.00015185916,0.00036748356,0.00020805225,0.00017134495,0.00027621002,0.000090379275],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00042843784,0.00008728924,0.00834346,0.00039317465,0.000060294424,0.0014656018,0.000662296,0.023971938,0.87840825,0.05718363,0.0029493473,0.026046325],"study_design_scores_gemma":[0.00014836715,0.0005410163,0.06865636,0.000048051817,0.000048823145,0.0014374637,0.000871166,0.275353,0.6080476,0.03443618,0.010357974,0.000053901727],"about_ca_topic_score_codex":0.0063738087,"about_ca_topic_score_gemma":0.005187134,"teacher_disagreement_score":0.0063738087,"about_ca_system_score_codex":0.00040720613,"about_ca_system_score_gemma":0.00026213584,"threshold_uncertainty_score":0.012673438},"labels":[],"label_agreement":null},{"id":"W2011575887","doi":"10.1103/physrevb.64.064509","title":"Microwave spectroscopy of quasiparticle transport in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>b</mml:mi></mml:math>direction of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>6.993</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada; National Science Foundation","keywords":"Quasiparticle; Physics; Spectroscopy; Excited state; Condensed matter physics; Atomic physics; Crystallography; Quantum mechanics; Chemistry; Superconductivity","score_opus":0.017143413739279866,"score_gpt":0.25066288236337575,"score_spread":0.2335194686240959,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2011575887","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5491036,0.0043929582,0.14415622,0.007786656,0.0021870364,0.00009061064,0.0030328713,0.0028967157,0.28635335],"genre_scores_gemma":[0.9268999,0.0010090872,0.01645423,0.0006599898,0.00010209772,0.00009036295,0.0010333664,0.00051363505,0.053237263],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998691,0.000027384602,0.0000035698288,0.000030154391,0.00004348689,0.000026285905],"domain_scores_gemma":[0.99981004,0.000068420675,0.000028538143,0.000035512567,0.000038782866,0.00001885472],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002912909,0.00029937277,0.00021336734,0.0007049331,0.0007461541,0.001044878,0.00047248518,0.0007580727,0.032125108],"category_scores_gemma":[0.0006553583,0.00024642333,0.00017916066,0.00058763905,0.0004445369,0.0013052728,0.00040013035,0.0012265916,0.004572178],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010920517,0.00028296572,0.0026141715,0.0005383565,0.00006632335,0.00058678904,0.00096081675,0.0029064473,0.6218904,0.21846958,0.08170865,0.06888337],"study_design_scores_gemma":[0.00019065503,0.0006087964,0.021482922,0.00021605505,0.00006417169,0.00082378986,0.0011292958,0.11646882,0.6336846,0.0897392,0.13543056,0.00016121825],"about_ca_topic_score_codex":0.00080026046,"about_ca_topic_score_gemma":0.0012158199,"teacher_disagreement_score":0.032125108,"about_ca_system_score_codex":0.0007304403,"about_ca_system_score_gemma":0.00027052066,"threshold_uncertainty_score":0.1074692},"labels":[],"label_agreement":null},{"id":"W2011600841","doi":"10.1103/physrevb.67.214411","title":"Variable temperature<i>X</i>-band EPR of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Gd</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">LaNbO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PrNbO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>crystals: Low-symmetry effect, influence of host and impurity paramagnetic ions on linewidth, and onset of antiferromagnetism","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Electron paramagnetic resonance; Paramagnetism; Physics; Crystallography; Condensed matter physics; Ion; Impurity; Antiferromagnetism; Nuclear magnetic resonance; Materials science; Chemistry","score_opus":0.010770286313631316,"score_gpt":0.2340479646028563,"score_spread":0.22327767828922498,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2011600841","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.26265064,0.002998289,0.14574488,0.009579037,0.0029379409,0.00031943794,0.025810398,0.0101108635,0.53984857],"genre_scores_gemma":[0.4036098,0.0035055543,0.08414458,0.0044474737,0.00031442352,0.0005093938,0.03653763,0.006485908,0.4604453],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99979585,0.000028387822,0.0000068905806,0.00007232352,0.000058896938,0.00003761719],"domain_scores_gemma":[0.99974877,0.000053216896,0.00004727268,0.000054740027,0.00006657158,0.000029384062],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00044260983,0.00065529684,0.00032381754,0.0005209327,0.00068042753,0.0009041224,0.0010221184,0.0007584243,0.08834326],"category_scores_gemma":[0.00051833387,0.00036394713,0.00028977572,0.0007315532,0.00041960692,0.0013924789,0.00045853032,0.0019491183,0.024883468],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0008363712,0.00020901844,0.000905387,0.0006126853,0.00005360415,0.00046413185,0.0004346817,0.0008820738,0.743186,0.021674495,0.19458039,0.036161177],"study_design_scores_gemma":[0.00014512373,0.0003579347,0.0036666042,0.000085001586,0.00004704891,0.0004138447,0.00024559893,0.0026253304,0.6236168,0.003121416,0.36557072,0.00010460479],"about_ca_topic_score_codex":0.0010844732,"about_ca_topic_score_gemma":0.002062355,"teacher_disagreement_score":0.08834326,"about_ca_system_score_codex":0.0007529053,"about_ca_system_score_gemma":0.0004480078,"threshold_uncertainty_score":0.29553765},"labels":[],"label_agreement":null},{"id":"W2012810468","doi":"10.1103/physrevb.67.100508","title":"Josephson-phase qubit without tunneling","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum Information and Cryptography","field":"Computer Science","cited_by":62,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"D-Wave Systems (Canada)","funders":"","keywords":"Qubit; Phase qubit; Josephson effect; Quantum tunnelling; Physics; Flux qubit; Microwave; Charge qubit; Coupling (piping); Quantum mechanics; Topology (electrical circuits); Superconductivity; Quantum; Electrical engineering; Materials science; Engineering","score_opus":0.015894165888382057,"score_gpt":0.3296828990001464,"score_spread":0.31378873311176436,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2012810468","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.63348293,0.0019261704,0.24201448,0.0015000801,0.0008270913,0.00026991504,0.0005680447,0.00064626336,0.11876501],"genre_scores_gemma":[0.9405744,0.00041982863,0.051242743,0.00018402768,0.000054568696,0.000062284,0.00012314497,0.000027160864,0.007311841],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998068,0.00002650897,0.000015681573,0.000037100606,0.00008502275,0.000028921495],"domain_scores_gemma":[0.99962926,0.0000783429,0.00004682067,0.00014279982,0.000058647587,0.000044131768],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038326366,0.00022562126,0.0003123876,0.00024009032,0.00039545924,0.0008075202,0.00055474765,0.00058491435,0.003999087],"category_scores_gemma":[0.0006988315,0.00012067058,0.00024048758,0.00023111235,0.0006239227,0.0012019748,0.00061551295,0.00056967896,0.00086764566],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00022118699,0.00016826489,0.0008861227,0.00027321154,0.000055706798,0.00035748855,0.00010733364,0.0014598202,0.30945843,0.6593404,0.0014356372,0.026236363],"study_design_scores_gemma":[0.00016711655,0.0009495246,0.0020054514,0.000067264235,0.00019471982,0.0019933367,0.00010114502,0.07305365,0.7265402,0.14887074,0.04598163,0.00007519248],"about_ca_topic_score_codex":0.0001052289,"about_ca_topic_score_gemma":0.00020540469,"teacher_disagreement_score":0.003999087,"about_ca_system_score_codex":0.00017700587,"about_ca_system_score_gemma":0.00026894733,"threshold_uncertainty_score":0.0133782625},"labels":[],"label_agreement":null},{"id":"W2013068728","doi":"10.1103/physrevb.65.195419","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>I</mml:mi><mml:mo>−</mml:mo><mml:mi>V</mml:mi></mml:math>characteristics and differential conductance fluctuations of Au nanowires","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":94,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Conductance; Quantum tunnelling; Nonlinear system; Charge (physics); Scattering; Ab initio; Atom (system on chip); Physics; Materials science; Condensed matter physics; Algorithm; Topology (electrical circuits); Quantum mechanics; Electrical engineering; Mathematics; Computer science","score_opus":0.014317705829244085,"score_gpt":0.24081853065174233,"score_spread":0.22650082482249825,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2013068728","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.15505375,0.00055678235,0.24125814,0.002351427,0.000432892,0.00028436902,0.12370821,0.053089075,0.4232654],"genre_scores_gemma":[0.34108195,0.0009130991,0.1519747,0.0004846566,0.000090692556,0.0006011395,0.074278034,0.021517668,0.409058],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990654,0.000009470332,0.0000047632448,0.000014882223,0.000051076404,0.000013354303],"domain_scores_gemma":[0.9998839,0.000037584497,0.000011644055,0.000027847018,0.000030772528,0.000008234767],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015347032,0.00035799047,0.00028727693,0.0007070673,0.000481125,0.0009549072,0.00094641,0.00038398188,0.17383316],"category_scores_gemma":[0.00045517206,0.00025108957,0.00025172837,0.0006772094,0.00022477379,0.0008036171,0.00023671785,0.0003453918,0.044347156],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00047417099,0.00021559947,0.0019160213,0.00063209893,0.00004134523,0.00032537992,0.00025433657,0.023914577,0.14938906,0.08303723,0.5893567,0.15044346],"study_design_scores_gemma":[0.00010219463,0.00013983811,0.005005907,0.000096833464,0.000015303129,0.00024495914,0.00012892926,0.21702644,0.3247637,0.032838564,0.4195336,0.00010372776],"about_ca_topic_score_codex":0.0038903004,"about_ca_topic_score_gemma":0.0060696956,"teacher_disagreement_score":0.17383316,"about_ca_system_score_codex":0.0010076794,"about_ca_system_score_gemma":0.00027068245,"threshold_uncertainty_score":0.58152986},"labels":[],"label_agreement":null},{"id":"W2013983776","doi":"10.1103/physrevb.61.2107","title":"Magnetoplasmon excitations in arrays of circular and noncircular quantum dots","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Quantum dot; Physics; Condensed matter physics; Quantum mechanics","score_opus":0.0071042220885188575,"score_gpt":0.25588645602771287,"score_spread":0.24878223393919402,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2013983776","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9974324,0.00008126105,0.0016771726,0.000017983502,0.0000050563094,0.0000029354012,0.0000061167584,0.000009518304,0.00076751236],"genre_scores_gemma":[0.9978083,0.000040731185,0.0017935298,0.0000055050486,0.0000013562916,0.000004029635,0.000009998107,0.0000025554214,0.00033416506],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999026,0.000016373533,0.0000067282267,0.000026484217,0.00002623372,0.000021606162],"domain_scores_gemma":[0.9997539,0.000088391665,0.000056492976,0.000030399131,0.000037052712,0.000033723943],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015240183,0.00012547096,0.00019324708,0.0001330229,0.0002937168,0.00035458116,0.00025121315,0.00026152947,0.00075419433],"category_scores_gemma":[0.00044516518,0.00014929732,0.00008079256,0.0002010824,0.00039235153,0.0004017,0.00031148203,0.0001673402,0.00011094075],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038394547,0.00014736371,0.0064316955,0.00017192832,0.000040343628,0.00077068835,0.00047337834,0.0539954,0.9090088,0.020715756,0.00020312911,0.0076576103],"study_design_scores_gemma":[0.000116843185,0.00088309677,0.0133150425,0.000028573095,0.000068296904,0.00071218744,0.00053509173,0.30493146,0.6706932,0.0051586507,0.0034890336,0.000068669695],"about_ca_topic_score_codex":0.00047716222,"about_ca_topic_score_gemma":0.0007398137,"teacher_disagreement_score":0.00075419433,"about_ca_system_score_codex":0.00019218022,"about_ca_system_score_gemma":0.000107347936,"threshold_uncertainty_score":0.0025230646},"labels":[],"label_agreement":null},{"id":"W2014190157","doi":"10.1103/physrevb.64.075420","title":"Conductance,<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>I</mml:mi><mml:mo>−</mml:mo><mml:mi>V</mml:mi></mml:math>curves, and negative differential resistance of carbon atomic wires","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":204,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; McGill University","keywords":"Conductance; HOMO/LUMO; Electrode; Materials science; Thermal conduction; Atomic physics; Physics; Analytical Chemistry (journal); Condensed matter physics; Molecule; Chemistry; Thermodynamics; Quantum mechanics","score_opus":0.011344428122102743,"score_gpt":0.24010778314076953,"score_spread":0.2287633550186668,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2014190157","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9308436,0.0018465747,0.02630085,0.00087886956,0.00012562402,0.00005163103,0.003259939,0.0014547169,0.035238195],"genre_scores_gemma":[0.9854254,0.0006801892,0.005525395,0.00006136467,0.000016039443,0.000040518746,0.00093304284,0.00018818984,0.007129729],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998105,0.00001575687,0.0000061202654,0.000051297702,0.000091203736,0.000025243604],"domain_scores_gemma":[0.9998197,0.000095638105,0.000020499954,0.000028143788,0.000028762386,0.00000731458],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001358292,0.0002161447,0.00028374186,0.0004666445,0.0002983274,0.00046894696,0.00045871545,0.0003735336,0.0046591945],"category_scores_gemma":[0.00066279975,0.00015412954,0.00018488626,0.0006098159,0.00037276544,0.00049123977,0.00015179387,0.00040083722,0.00064730574],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00049298233,0.00020103705,0.004021221,0.0007911618,0.00008992339,0.00081572344,0.0006734845,0.022608502,0.83226657,0.06822375,0.011211386,0.05860426],"study_design_scores_gemma":[0.000025469988,0.00023872513,0.007813456,0.000033411216,0.000044758035,0.00052318897,0.00007735561,0.12063559,0.83724374,0.016552188,0.016769294,0.00004290973],"about_ca_topic_score_codex":0.0007105217,"about_ca_topic_score_gemma":0.0009566762,"teacher_disagreement_score":0.0046591945,"about_ca_system_score_codex":0.0005871911,"about_ca_system_score_gemma":0.000174744,"threshold_uncertainty_score":0.015586615},"labels":[],"label_agreement":null},{"id":"W2014799552","doi":"10.1103/physrevb.63.174103","title":"Symmetry-general least-squares extraction of elastic coefficients from<i>ab initio</i>total energy calculations","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"X-ray Diffraction in Crystallography","field":"Materials Science","cited_by":291,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada","funders":"","keywords":"Triclinic crystal system; Symmetry (geometry); Ab initio; Physics; Ab initio quantum chemistry methods; Tetragonal crystal system; Energy (signal processing); Mathematical analysis; Mathematics; Quantum mechanics; Geometry","score_opus":0.01611741931752802,"score_gpt":0.3096453341980587,"score_spread":0.29352791488053065,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2014799552","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.009718232,0.000042930667,0.98504156,0.000046720594,0.000020524161,0.00007874404,0.0005160553,0.0012114189,0.0033238365],"genre_scores_gemma":[0.09712254,0.00016328659,0.8964331,0.00003616732,0.00001086461,0.00037375494,0.001558171,0.0011139453,0.0031881423],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9993724,0.00012172716,0.000038205046,0.000069911024,0.00034882946,0.00004884338],"domain_scores_gemma":[0.99915063,0.00017301152,0.00006362274,0.00027172884,0.0003180203,0.000022940454],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010732005,0.00097214285,0.00065044296,0.0011786141,0.00065313047,0.00094871846,0.002069552,0.00057341025,0.0055264337],"category_scores_gemma":[0.0033359495,0.00081690814,0.0007745694,0.0012422813,0.00038772073,0.00094805704,0.00066032604,0.0011448616,0.0027782933],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013093467,0.0001605344,0.0015750214,0.000552051,0.000097109005,0.00020892704,0.0002683939,0.53621846,0.09071421,0.14521204,0.011112166,0.21375014],"study_design_scores_gemma":[0.000014433587,0.000026372858,0.0003868152,0.000016776372,0.0000068927875,0.00004779722,0.00002769876,0.9631414,0.017547676,0.014529288,0.0042255833,0.000029230565],"about_ca_topic_score_codex":0.0028413963,"about_ca_topic_score_gemma":0.004129363,"teacher_disagreement_score":0.0055264337,"about_ca_system_score_codex":0.0005794684,"about_ca_system_score_gemma":0.0023927176,"threshold_uncertainty_score":0.018487751},"labels":[],"label_agreement":null},{"id":"W2015137185","doi":"10.1103/physrevb.62.12707","title":"Dynamical correlations in one-dimensional charge-transfer insulators","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Bishop's University","funders":"","keywords":"Eigenfunction; Charge (physics); Physics; Dirac delta function; Spectral function; Spectral line; Limit (mathematics); Spin (aerodynamics); Interpretation (philosophy); Condensed matter physics; Statistical physics; Eigenvalues and eigenvectors; Quantum mechanics; Mathematics; Thermodynamics; Mathematical analysis","score_opus":0.014051660158063648,"score_gpt":0.26853225353301907,"score_spread":0.25448059337495543,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2015137185","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9864486,0.00019221663,0.0055792886,0.00041343202,0.000027038146,0.000015650747,0.00006962879,0.00014067,0.00711342],"genre_scores_gemma":[0.99852043,0.00005964962,0.00056752394,0.000025225268,0.000012869292,0.000013417933,0.000046492223,0.000012548704,0.000741929],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99985754,0.000042822972,0.000006310181,0.000016586093,0.000030793293,0.000045904762],"domain_scores_gemma":[0.99939656,0.00019619812,0.00011424245,0.00008310689,0.00008677244,0.00012316549],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000401052,0.00026019834,0.00045078286,0.00088653655,0.000684441,0.001403721,0.00063772436,0.0005625423,0.0014586888],"category_scores_gemma":[0.0013277871,0.00025414696,0.0004091068,0.00032846743,0.001405233,0.0010826844,0.00065324316,0.0004901147,0.00012466335],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015945021,0.00024158396,0.0051362813,0.000099055025,0.00005770213,0.0006641972,0.00038002522,0.13888559,0.01038909,0.8383963,0.0021555442,0.0034351056],"study_design_scores_gemma":[0.000047114565,0.00006510174,0.0034014848,0.000013314035,0.000015969012,0.00012945113,0.000092273825,0.8313858,0.0016527261,0.16254903,0.00061021186,0.000037566664],"about_ca_topic_score_codex":0.0017870842,"about_ca_topic_score_gemma":0.0014692177,"teacher_disagreement_score":0.0017870842,"about_ca_system_score_codex":0.0010525299,"about_ca_system_score_gemma":0.00048980414,"threshold_uncertainty_score":0.0076366663},"labels":[],"label_agreement":null},{"id":"W2015877634","doi":"10.1103/physrevb.65.045410","title":"Stability of a<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sn</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>tetrahedral cluster in an alkali atom environment","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advancements in Battery Materials","field":"Engineering","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Tetrahedron; Crystallography; Physics; Alkali metal; Cluster (spacecraft); Atom (system on chip); Chemistry; Quantum mechanics; Computer science","score_opus":0.020359683415232862,"score_gpt":0.2542484518888013,"score_spread":0.23388876847356843,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2015877634","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9651334,0.00019729637,0.0042813853,0.00047851136,0.000059234644,0.000025563559,0.00066880276,0.00020368991,0.028952135],"genre_scores_gemma":[0.99155617,0.0001676745,0.0026579127,0.00005461362,0.000010219669,0.00004147208,0.001095111,0.000113853224,0.00430296],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998264,0.000016576276,0.0000068371796,0.000036440713,0.000059975868,0.000053839343],"domain_scores_gemma":[0.99973613,0.000062844425,0.000028487933,0.000043526492,0.0000855219,0.000043424374],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020853127,0.00024768704,0.00046572022,0.0005617651,0.0016630983,0.0012537255,0.0011547155,0.0007816357,0.012293137],"category_scores_gemma":[0.00059818855,0.00027628933,0.00044391127,0.0006450388,0.0010226711,0.00063222187,0.0007076525,0.0005136871,0.00092401926],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.002066422,0.00029660415,0.018688003,0.0012123067,0.00037879345,0.0009389732,0.0012932053,0.53348064,0.17318812,0.21809243,0.024593411,0.025771113],"study_design_scores_gemma":[0.00027301183,0.0013767158,0.012025475,0.00010352226,0.00019368857,0.00034970418,0.0015113518,0.83520645,0.108471945,0.025460223,0.014832055,0.00019588743],"about_ca_topic_score_codex":0.016529711,"about_ca_topic_score_gemma":0.016110672,"teacher_disagreement_score":0.016529711,"about_ca_system_score_codex":0.0015985044,"about_ca_system_score_gemma":0.0016683373,"threshold_uncertainty_score":0.041124642},"labels":[],"label_agreement":null},{"id":"W2017672947","doi":"10.1103/physrevb.66.024512","title":"Symmetry of the order parameter in superconducting<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">ZrZn</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rare-earth and actinide compounds","field":"Physics and Astronomy","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Symmetry (geometry); Superconductivity; Order (exchange); Physics; Magnetization; Condensed matter physics; Ferromagnetism; Mathematics; Quantum mechanics; Geometry","score_opus":0.020297714320286812,"score_gpt":0.2542009040110262,"score_spread":0.23390318969073937,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2017672947","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.857063,0.00063183706,0.06941061,0.0007995865,0.0002206383,0.00011969704,0.0004350551,0.0001914728,0.07112796],"genre_scores_gemma":[0.97713226,0.0003528807,0.01740934,0.00010161845,0.000043324013,0.00006381489,0.00025253577,0.000093978204,0.0045503285],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998623,0.000026781503,0.000010741711,0.000026281266,0.00004077788,0.00003309699],"domain_scores_gemma":[0.999757,0.00006086949,0.00006440557,0.00004731718,0.00004781881,0.000022719036],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003329996,0.0002784241,0.0003503427,0.0008049292,0.0005794242,0.001000737,0.00044092414,0.00058337214,0.004676519],"category_scores_gemma":[0.000659284,0.00017205549,0.000449783,0.0002860667,0.0009911078,0.0010149765,0.00026773897,0.0004500002,0.0009471912],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010177244,0.000058300877,0.0009478716,0.000109389446,0.000008809791,0.00039123092,0.00019718814,0.0046252133,0.08330538,0.8988364,0.0018116214,0.009606871],"study_design_scores_gemma":[0.00009830467,0.00031443336,0.0031765641,0.000048630285,0.000027830394,0.0011373126,0.00040410156,0.13858818,0.09455972,0.7549109,0.0066391486,0.0000949709],"about_ca_topic_score_codex":0.00072060997,"about_ca_topic_score_gemma":0.0010680509,"teacher_disagreement_score":0.004676519,"about_ca_system_score_codex":0.00048548332,"about_ca_system_score_gemma":0.00054772355,"threshold_uncertainty_score":0.01564455},"labels":[],"label_agreement":null},{"id":"W2018777409","doi":"10.1103/physrevb.66.081404","title":"Charge fluctuations and the tunneling spectra of nonmagnetic metallic nanoparticles","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Quantum tunnelling; Condensed matter physics; Charge (physics); Spectral line; Metal; Nanoparticle; Materials science; Chemical physics; Physics; Nanotechnology; Quantum mechanics","score_opus":0.011955553490301156,"score_gpt":0.24600582531539028,"score_spread":0.2340502718250891,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2018777409","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96576726,0.00039527175,0.028033251,0.0002119538,0.000041677908,0.000018652103,0.000025502184,0.000113385795,0.005393078],"genre_scores_gemma":[0.9980646,0.00010418469,0.0013572037,0.000017307226,0.000007800858,0.000008768483,0.000013446027,0.00001537938,0.00041135756],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999089,0.000024582367,0.0000039528,0.000009057762,0.00003657704,0.000016843685],"domain_scores_gemma":[0.9997161,0.00013657774,0.000044882734,0.000030359392,0.000039799565,0.000032161643],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029016277,0.0003916798,0.00027649617,0.0005520315,0.00038853957,0.0005019196,0.0006070692,0.00046502106,0.00093137415],"category_scores_gemma":[0.0016205644,0.00021728406,0.00027564942,0.0002998338,0.00080119446,0.00068313937,0.0003617754,0.00040164852,0.00013159953],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025795502,0.0001726439,0.00327789,0.00021583308,0.00008998274,0.00097067346,0.00029414415,0.77371246,0.07161411,0.14042003,0.00049062236,0.008483681],"study_design_scores_gemma":[0.000013797078,0.000029631254,0.0006757472,0.0000053819795,0.000007914197,0.00006028264,0.000025596506,0.98278046,0.005167228,0.011111954,0.00011139514,0.000010508894],"about_ca_topic_score_codex":0.0013245656,"about_ca_topic_score_gemma":0.0009369771,"teacher_disagreement_score":0.0013245656,"about_ca_system_score_codex":0.0005367842,"about_ca_system_score_gemma":0.00026040757,"threshold_uncertainty_score":0.0038946867},"labels":[],"label_agreement":null},{"id":"W2019574390","doi":"10.1103/physrevb.67.075416","title":"Stress-driven instability in growing multilayer films","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Fluid Dynamics and Thin Films","field":"Engineering","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Instability; Materials science; Ultimate tensile strength; Epitaxy; Stress (linguistics); Dislocation; Asymmetry; Saturation (graph theory); Kinetic energy; Condensed matter physics; Composite material; Layer (electronics); Mechanics; Physics; Classical mechanics; Mathematics","score_opus":0.010172886557271771,"score_gpt":0.25760840529138546,"score_spread":0.24743551873411368,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2019574390","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9907392,0.00024876907,0.007798435,0.000039750095,0.0000067672117,0.00000635688,0.000025690426,0.000031118343,0.001103901],"genre_scores_gemma":[0.996398,0.00011765004,0.0030549774,0.000006055166,0.0000042953366,0.000004782034,0.000022384223,0.000005449548,0.0003864154],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999418,0.000005611371,0.0000036560057,0.000012263248,0.000023169068,0.000013511615],"domain_scores_gemma":[0.9999044,0.00001809518,0.000041977048,0.0000074267564,0.000017744103,0.000010394289],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007493464,0.00021717345,0.00014766742,0.00023949132,0.000210981,0.00027569517,0.00019444588,0.00018836986,0.0003012751],"category_scores_gemma":[0.0002981051,0.00013135694,0.00018818604,0.00012454655,0.00018691261,0.0002769814,0.00026398152,0.00016456663,0.000059425416],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000029394758,0.00001485891,0.001553993,0.000041342195,0.000013749783,0.00016184317,0.000067940775,0.011999713,0.9814555,0.0019232067,0.000046978777,0.002691552],"study_design_scores_gemma":[0.000020882075,0.00018402806,0.010386769,0.000010798037,0.000022406872,0.00032142052,0.00006956226,0.48131123,0.5048726,0.0018897112,0.0008866626,0.000023971941],"about_ca_topic_score_codex":0.0008678995,"about_ca_topic_score_gemma":0.0007672098,"teacher_disagreement_score":0.0008678995,"about_ca_system_score_codex":0.00025133725,"about_ca_system_score_gemma":0.000093422765,"threshold_uncertainty_score":0.0018236041},"labels":[],"label_agreement":null},{"id":"W2020104584","doi":"10.1103/physrevb.67.134510","title":"Rotating antiferromagnetism in high-temperature superconductors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Laurentian University","funders":"","keywords":"Antiferromagnetism; Condensed matter physics; Superconductivity; Physics; Quantum critical point; Doping; Coulomb; Quantum; Critical point (mathematics); Order (exchange); Quantum mechanics; Quantum phase transition; Phase transition; Electron","score_opus":0.010378377961904621,"score_gpt":0.27251576329553934,"score_spread":0.26213738533363473,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2020104584","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9844551,0.0009811876,0.00839331,0.00017339257,0.000024695779,0.000015858204,0.000023822038,0.00006683961,0.005865852],"genre_scores_gemma":[0.99756026,0.0002154066,0.0020088896,0.000012299997,0.000009065143,0.0000057885154,0.000014373025,0.000006648539,0.00016729679],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998252,0.000070230504,0.000010643867,0.000013662461,0.000052455995,0.00002792181],"domain_scores_gemma":[0.9997385,0.00007914557,0.00007001591,0.000053381038,0.00003703815,0.000021905444],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00035327015,0.00032372525,0.00047435774,0.00062997045,0.000555042,0.0007742801,0.0004523055,0.0004306829,0.000821663],"category_scores_gemma":[0.0008078315,0.00016111002,0.00026081756,0.0003623221,0.0010061566,0.0006200862,0.0003526912,0.00030582646,0.00011235371],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00037290654,0.00013889132,0.009316509,0.0004918985,0.00007919398,0.0020006064,0.0003288216,0.1391502,0.29608935,0.539332,0.0007930815,0.011906642],"study_design_scores_gemma":[0.00020758904,0.00050434854,0.015741993,0.00005406666,0.000094302464,0.0014177277,0.00028062833,0.71995145,0.09698254,0.16148348,0.0031573821,0.00012452557],"about_ca_topic_score_codex":0.0012968484,"about_ca_topic_score_gemma":0.0016769598,"teacher_disagreement_score":0.0012968484,"about_ca_system_score_codex":0.00046503812,"about_ca_system_score_gemma":0.00042342054,"threshold_uncertainty_score":0.0033740997},"labels":[],"label_agreement":null},{"id":"W2020481412","doi":"10.1103/physrevb.65.045315","title":"Smoluchowski ripening and random percolation in epitaxial<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Si</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ge</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">Si</mml:mi><mml:mn/><mml:mo>(</mml:mo><mml:mn>001</mml:mn><mml:mo>)</mml:mo><mml:mn/></mml:math>islands","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Mitacs","keywords":"Percolation (cognitive psychology); Percolation threshold; Physics; Coalescence (physics); Smoluchowski coagulation equation; Materials science; Statistical physics; Combinatorics; Quantum mechanics; Mathematics; Electrical resistivity and conductivity","score_opus":0.016184778604896914,"score_gpt":0.24533912369419583,"score_spread":0.2291543450892989,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2020481412","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7195597,0.0044991327,0.06432041,0.0037383558,0.00052757544,0.0001828133,0.0012279002,0.0016101385,0.20433393],"genre_scores_gemma":[0.95738083,0.00092811324,0.012090664,0.0004277604,0.00008861943,0.00010911255,0.0005480204,0.00040959197,0.028017305],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997328,0.00005276804,0.000009637224,0.000055864053,0.00007394618,0.000075007585],"domain_scores_gemma":[0.9995683,0.00017251282,0.00006382603,0.000050300278,0.00006331877,0.00008173594],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002852649,0.00034993832,0.00046942712,0.001171285,0.0011133687,0.0016777433,0.00081390934,0.0008661853,0.009318527],"category_scores_gemma":[0.0016359136,0.00058862055,0.0006936901,0.0004249863,0.0011766859,0.0013052914,0.0008090159,0.001012342,0.0012676415],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00036797128,0.0001271523,0.001276143,0.0004505955,0.000059856982,0.0007203435,0.00023860415,0.028530857,0.039601654,0.89210653,0.023305323,0.013214935],"study_design_scores_gemma":[0.000107572036,0.00014672398,0.006482974,0.00011012471,0.000050007515,0.0006450901,0.0002381235,0.33238992,0.019822665,0.62879694,0.011076707,0.00013313914],"about_ca_topic_score_codex":0.0031545265,"about_ca_topic_score_gemma":0.0069943937,"teacher_disagreement_score":0.009318527,"about_ca_system_score_codex":0.001026282,"about_ca_system_score_gemma":0.00071190303,"threshold_uncertainty_score":0.031173587},"labels":[],"label_agreement":null},{"id":"W2020740036","doi":"10.1103/physrevb.67.214506","title":"Comparison of<i>s</i>- and<i>d</i>-wave gap symmetry in nonequilibrium superconductivity","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; University of Guelph","funders":"","keywords":"Superconductivity; Physics; Symmetry (geometry); Non-equilibrium thermodynamics; Condensed matter physics; Quantum mechanics; Quantum electrodynamics; Mathematics","score_opus":0.047475662646428836,"score_gpt":0.342719058310036,"score_spread":0.2952433956636072,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2020740036","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.87063324,0.041855093,0.00958927,0.0093295,0.0005302285,0.000020765412,0.00017402244,0.000062565625,0.06780523],"genre_scores_gemma":[0.987094,0.010296584,0.0009286575,0.00024438798,0.00008465701,0.000012944001,0.000055258264,0.00001524821,0.0012683108],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999194,0.00002408291,0.0000055130354,0.000011342845,0.000026796139,0.000012867895],"domain_scores_gemma":[0.9996879,0.00013065383,0.000047321082,0.000043414453,0.00005755656,0.00003323046],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00047551398,0.0000794339,0.00017295242,0.0004461429,0.00029482806,0.0007792287,0.00025362385,0.00020395308,0.0008028483],"category_scores_gemma":[0.0007401617,0.00007192354,0.00011927081,0.000283757,0.0012450169,0.00070298894,0.00026663646,0.00036495854,0.00010429028],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018150096,0.000040512474,0.0053534387,0.00056462485,0.000029713203,0.0002671754,0.00036764905,0.002131021,0.028834196,0.90877426,0.0031271437,0.050328813],"study_design_scores_gemma":[0.00011155569,0.00045127646,0.05728719,0.00023677203,0.000089316585,0.0008718655,0.0013758373,0.018365229,0.044262126,0.806829,0.07003865,0.00008114859],"about_ca_topic_score_codex":0.0008110602,"about_ca_topic_score_gemma":0.0010009382,"teacher_disagreement_score":0.0008110602,"about_ca_system_score_codex":0.0005816194,"about_ca_system_score_gemma":0.0004912101,"threshold_uncertainty_score":0.004220009},"labels":[],"label_agreement":null},{"id":"W2021578560","doi":"10.1103/physrevb.62.9054","title":"Coupling to spin fluctuations from conductivity scattering rates","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":67,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Condensed matter physics; Superconductivity; Optical conductivity; Resonance (particle physics); Coupling (piping); Conductivity; Spin (aerodynamics); Scattering; Physics; Doping; Scattering rate; Materials science; Quantum mechanics; Thermodynamics","score_opus":0.01884229916071966,"score_gpt":0.32029096940133156,"score_spread":0.3014486702406119,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2021578560","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9447728,0.00031745137,0.03532941,0.00032863583,0.000058887363,0.000048772574,0.00014690474,0.00028133945,0.018715778],"genre_scores_gemma":[0.9978108,0.000084431405,0.0010126408,0.000016101832,0.0000118130465,0.0000118192675,0.00003944188,0.00003372587,0.0009792921],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99947685,0.00010214957,0.000030025418,0.00014292095,0.00017375997,0.00007432546],"domain_scores_gemma":[0.99845064,0.00088205887,0.00018911391,0.00022885621,0.00016071822,0.00008861325],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007050581,0.00047950217,0.00032083679,0.00084846956,0.0003440457,0.0010475627,0.00045406868,0.00035590382,0.003813014],"category_scores_gemma":[0.0049299295,0.00051629246,0.00023792227,0.00049619435,0.00052875956,0.00086725515,0.0005716199,0.0005955228,0.00035565777],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004298356,0.00037909424,0.03233689,0.00032056897,0.00020480072,0.0008681286,0.001063624,0.15294935,0.55069935,0.1803056,0.0012897571,0.079153],"study_design_scores_gemma":[0.000052732234,0.00012724554,0.035281826,0.0000423075,0.00008409423,0.00075238367,0.00017755985,0.77423686,0.12235036,0.06384503,0.002833249,0.00021627557],"about_ca_topic_score_codex":0.0013116179,"about_ca_topic_score_gemma":0.0010203316,"teacher_disagreement_score":0.003813014,"about_ca_system_score_codex":0.00074446906,"about_ca_system_score_gemma":0.00028082824,"threshold_uncertainty_score":0.012755871},"labels":[],"label_agreement":null},{"id":"W2022104662","doi":"10.1103/physrevb.65.180103","title":"CuCN: An orientational glass","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Material Dynamics and Properties","field":"Materials Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada; McMaster University","keywords":"Monoclinic crystal system; Orthorhombic crystal system; Materials science; Crystallography; Crystal (programming language); Phase (matter); Crystallization; Atmospheric temperature range; Crystal structure; Physics; Condensed matter physics; Thermodynamics; Chemistry; Quantum mechanics","score_opus":0.02685828744161016,"score_gpt":0.2997368953264535,"score_spread":0.2728786078848433,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2022104662","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9842977,0.0008653582,0.0015288776,0.00009379405,0.00008580693,0.000025637979,0.0005296868,0.00025606275,0.012317202],"genre_scores_gemma":[0.99349254,0.00019400947,0.00089620997,0.000038842914,0.000008070332,0.000011502198,0.0002706651,0.000046532572,0.005041585],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992657,0.000004633849,0.0000023243372,0.000028018487,0.000021359048,0.0000171705],"domain_scores_gemma":[0.99996674,0.0000024978299,0.0000069404077,0.0000035324824,0.000008873353,0.000011509022],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00005348286,0.00015687777,0.00008345313,0.0001946967,0.00026644865,0.00028024812,0.00016837848,0.00018583765,0.0013007252],"category_scores_gemma":[0.00006750174,0.00014380775,0.00006930638,0.00013894476,0.0003740282,0.00016082053,0.00021688128,0.00014606006,0.00028737856],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000121901416,0.000009376427,0.00072506774,0.00010333994,0.0000040359673,0.00008980513,0.0000490195,0.00037432442,0.99330753,0.0014809618,0.0006073822,0.0031272545],"study_design_scores_gemma":[0.000018452485,0.00018309402,0.008103816,0.000017834025,0.000011527102,0.00018871555,0.00006338287,0.0049408902,0.97259074,0.00024752851,0.013611897,0.000022188156],"about_ca_topic_score_codex":0.0072582136,"about_ca_topic_score_gemma":0.0119707715,"teacher_disagreement_score":0.0072582136,"about_ca_system_score_codex":0.000642043,"about_ca_system_score_gemma":0.000245582,"threshold_uncertainty_score":0.014431894},"labels":[],"label_agreement":null},{"id":"W2022360878","doi":"10.1103/physrevb.61.13050","title":"Grazing-angle intersubband absorption in<i>n</i>-doped GaAs multiple quantum wells","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Quantum well; Absorption (acoustics); Doping; Materials science; Grazing; Physics; Condensed matter physics; Atomic physics; Optics; Laser; Biology","score_opus":0.012511697304528014,"score_gpt":0.28829117891966793,"score_spread":0.27577948161513993,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2022360878","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9972038,0.00020438978,0.0012975195,0.000014042287,0.000004052336,0.000003251461,0.00001646542,0.000011088719,0.0012455063],"genre_scores_gemma":[0.9988613,0.00016356929,0.0006746902,0.0000049331175,0.0000017518106,0.000003849599,0.00001778245,0.0000032650194,0.00026873767],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99989724,0.0000135924065,0.0000034740638,0.000021240365,0.0000384331,0.000026131578],"domain_scores_gemma":[0.99981207,0.000083883635,0.000054149277,0.0000147333085,0.000020131036,0.000015123547],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015659709,0.00019396517,0.00024582774,0.00020046614,0.0003122152,0.0004082976,0.0003830111,0.00023811359,0.0007809422],"category_scores_gemma":[0.00021586193,0.00016035106,0.00016063984,0.00038175093,0.00045427954,0.00029815908,0.0002058727,0.0002933345,0.00011742885],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00036904242,0.00010304357,0.005127848,0.00013607174,0.000033428027,0.000499975,0.0002771256,0.009952873,0.97119695,0.008000779,0.000109465465,0.004193378],"study_design_scores_gemma":[0.000059001857,0.00041544656,0.01972738,0.000035942263,0.0000399779,0.0004636348,0.00040168775,0.12109517,0.8530808,0.003170648,0.0014601771,0.000050094575],"about_ca_topic_score_codex":0.0011604925,"about_ca_topic_score_gemma":0.0013647928,"teacher_disagreement_score":0.0011604925,"about_ca_system_score_codex":0.00036746537,"about_ca_system_score_gemma":0.00013769191,"threshold_uncertainty_score":0.0026661158},"labels":[],"label_agreement":null},{"id":"W2023445384","doi":"10.1103/physrevb.62.5531","title":"Temperature dependence of the momentum distribution of positronium in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MgF</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>,</mml:mo></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">SiO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>,</mml:mo></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">H</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Muon and positron interactions and applications","field":"Engineering","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Positronium; Physics; Delocalized electron; Momentum (technical analysis); Distribution (mathematics); Distribution function; Atomic physics; Scattering; Diffusion; Condensed matter physics; Quantum mechanics; Positron; Electron","score_opus":0.012114101618087077,"score_gpt":0.24177242683281328,"score_spread":0.2296583252147262,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2023445384","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8820664,0.004605279,0.014701062,0.00204208,0.000687082,0.00006427232,0.0128958365,0.0033830474,0.079555],"genre_scores_gemma":[0.9685128,0.0008722168,0.0024175842,0.00020413351,0.000029612567,0.000046050278,0.007587059,0.001172481,0.019158043],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996376,0.000028087185,0.00001194646,0.00011695531,0.0000856202,0.00011982684],"domain_scores_gemma":[0.99884355,0.0004699514,0.00012774987,0.000114074974,0.000370132,0.00007453908],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034792811,0.00038797213,0.00036732803,0.00044463057,0.00048387374,0.0012021529,0.00064572337,0.00056059053,0.025377491],"category_scores_gemma":[0.0016254399,0.00050042436,0.00040477753,0.00048751105,0.00043282143,0.0010882206,0.00032453082,0.0014899515,0.006594415],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00587792,0.00050404883,0.032375686,0.0009991677,0.00034696364,0.0009787629,0.0010175038,0.032331582,0.7891625,0.011630198,0.08491601,0.039859697],"study_design_scores_gemma":[0.000066033484,0.0003954765,0.070536196,0.00007176348,0.00008354009,0.00031293868,0.00046219578,0.03943489,0.86537385,0.0014279354,0.021678261,0.00015688478],"about_ca_topic_score_codex":0.006899665,"about_ca_topic_score_gemma":0.0075216964,"teacher_disagreement_score":0.025377491,"about_ca_system_score_codex":0.0010946513,"about_ca_system_score_gemma":0.0005012727,"threshold_uncertainty_score":0.08489615},"labels":[],"label_agreement":null},{"id":"W2024735358","doi":"10.1103/physrevb.63.054422","title":"Ideal spin filters: A theoretical study of electron transmission through ordered and disordered interfaces between ferromagnetic metals and semiconductors","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":95,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Condensed matter physics; Ferromagnetism; Spin (aerodynamics); Fermi level; Electron; Ideal (ethics); Semiconductor; Fermi energy; Spinplasmonics; Fermi Gamma-ray Space Telescope; Materials science; Physics; Spin polarization; Spin Hall effect; Quantum mechanics","score_opus":0.013868583604932415,"score_gpt":0.30788862226098307,"score_spread":0.29402003865605064,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2024735358","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.55941117,0.007977117,0.31043044,0.0025899499,0.00027593115,0.00010584902,0.00016521144,0.00028846282,0.118755914],"genre_scores_gemma":[0.9735327,0.002775196,0.0155236805,0.00016072771,0.0001652759,0.00007315737,0.000049327664,0.00003975783,0.00768023],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998247,0.000053143543,0.00000584271,0.000017731592,0.000059778362,0.000038744805],"domain_scores_gemma":[0.99957234,0.00027953257,0.00004717553,0.00003584926,0.000038446306,0.000026594787],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00071020017,0.00031875412,0.0003617726,0.0011482243,0.00080893683,0.0013142508,0.0008345808,0.0009031013,0.0029923494],"category_scores_gemma":[0.0013907473,0.00025128308,0.0003210984,0.00048398285,0.001975303,0.002385797,0.00052089297,0.00052184664,0.00026419276],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000027319287,0.000018329236,0.00013925046,0.00005046666,0.0000044417498,0.00008203602,0.00012654871,0.014743191,0.0016458146,0.97991025,0.00046752815,0.002784827],"study_design_scores_gemma":[0.00002759934,0.00004708226,0.00023083093,0.000030036643,0.00001052343,0.00014405097,0.00011639265,0.20537025,0.0011533115,0.79025924,0.002596513,0.000014155922],"about_ca_topic_score_codex":0.00080994994,"about_ca_topic_score_gemma":0.00044816133,"teacher_disagreement_score":0.0029923494,"about_ca_system_score_codex":0.0006647754,"about_ca_system_score_gemma":0.0003134637,"threshold_uncertainty_score":0.010010421},"labels":[],"label_agreement":null},{"id":"W2024736396","doi":"10.1103/physrevb.62.1433","title":"Andreev scattering and Josephson current in a one-dimensional electron liquid","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":119,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; Canadian Institute for Advanced Research","funders":"","keywords":"Andreev reflection; Physics; Condensed matter physics; Superconductivity; Scattering; Hamiltonian (control theory); Josephson effect; Quantum mechanics; Electron; Bosonization; Renormalization; Renormalization group; Fermion; Mathematics","score_opus":0.01603501304718979,"score_gpt":0.2922029067006882,"score_spread":0.2761678936534984,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2024736396","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97283924,0.00036836503,0.011019769,0.00025841332,0.000024341882,0.000012519175,0.000010187019,0.000038033864,0.015429065],"genre_scores_gemma":[0.99555224,0.00022198702,0.0018297852,0.000029517,0.000016289025,0.000013877629,0.000012725286,0.00001343726,0.0023102078],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99983823,0.000044274177,0.000006204628,0.000015587415,0.000056189852,0.00003955256],"domain_scores_gemma":[0.99971205,0.00014668335,0.00005620114,0.000025973703,0.000024824398,0.000034220546],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00033843453,0.0004195237,0.0003744194,0.0006283359,0.0007967531,0.0009332876,0.000553281,0.0007206962,0.0018354562],"category_scores_gemma":[0.00096091995,0.00023057839,0.00040959325,0.0003401878,0.0014935405,0.0015912608,0.00083069666,0.0006884496,0.0001375073],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008543705,0.00019890814,0.0017416588,0.00015654627,0.000048173933,0.0008008693,0.0005795274,0.055992074,0.04734567,0.8883321,0.0002727301,0.00444632],"study_design_scores_gemma":[0.00007102009,0.00021041013,0.0028676218,0.000035892306,0.00004620581,0.0006590902,0.00047753923,0.6648754,0.020008255,0.3092955,0.001407131,0.000045878252],"about_ca_topic_score_codex":0.0007684397,"about_ca_topic_score_gemma":0.00087428314,"teacher_disagreement_score":0.0018354562,"about_ca_system_score_codex":0.0005352803,"about_ca_system_score_gemma":0.00037632673,"threshold_uncertainty_score":0.006140232},"labels":[],"label_agreement":null},{"id":"W2024886440","doi":"10.1103/physrevb.66.241405","title":"Probing correlated current and force effects of nanoparticle charge states by hybrid STM-AFM","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Force Microscopy Techniques and Applications","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Cantilever; Quantum tunnelling; Scanning tunneling microscope; Atomic force microscopy; Materials science; Substrate (aquarium); Conductive atomic force microscopy; Coulomb; Condensed matter physics; Capacitance; Biasing; Nanotechnology; Nanoparticle; Voltage; Electron; Physics; Optoelectronics; Electrode; Quantum mechanics; Composite material","score_opus":0.0065807675044047935,"score_gpt":0.27568877544008386,"score_spread":0.26910800793567907,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2024886440","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96735036,0.0004405865,0.029888708,0.00004727815,0.000036783134,0.000030754505,0.00014824633,0.00030492846,0.0017522238],"genre_scores_gemma":[0.98121417,0.00010264722,0.01787497,0.000042561856,0.000014697135,0.000035147117,0.00008812523,0.000016788576,0.00061089586],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99955934,0.000042716358,0.000020338519,0.000092963775,0.00023018829,0.0000543369],"domain_scores_gemma":[0.99946016,0.00026515994,0.000060846603,0.00008433322,0.00008826918,0.000041217423],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003385023,0.00023689914,0.0004036287,0.00047277487,0.00020432408,0.00046272133,0.00061347656,0.00055027875,0.0013923435],"category_scores_gemma":[0.00083786563,0.00028062242,0.0001871084,0.00032030712,0.00030517724,0.0006031929,0.0006628582,0.00041116905,0.00025663082],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010529977,0.000054066913,0.0015108086,0.000059420712,0.000034481003,0.00010960403,0.00004381049,0.00082701596,0.9885106,0.0005846827,0.00012934601,0.00803078],"study_design_scores_gemma":[0.000054538752,0.00040317746,0.027386976,0.000014219537,0.00005916434,0.0012066677,0.00010817009,0.083425894,0.8842702,0.0014064389,0.001593732,0.00007087321],"about_ca_topic_score_codex":0.0004520859,"about_ca_topic_score_gemma":0.001349352,"teacher_disagreement_score":0.0013923435,"about_ca_system_score_codex":0.00027905605,"about_ca_system_score_gemma":0.00009248205,"threshold_uncertainty_score":0.004657805},"labels":[],"label_agreement":null},{"id":"W2025045943","doi":"10.1103/physrevb.65.205419","title":"Epitaxial growth in dislocation-free strained alloy films: Morphological and compositional instabilities","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"nanoparticles nucleation surface interactions","field":"Earth and Planetary Sciences","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Spinodal decomposition; Materials science; Nucleation; Spinodal; Instability; Epitaxy; Condensed matter physics; Dislocation; Scaling; Growth rate; Alloy; Non-equilibrium thermodynamics; Chemical physics; Thermodynamics; Phase (matter); Nanotechnology; Composite material; Chemistry; Mechanics; Physics; Layer (electronics); Mathematics","score_opus":0.021297618688575153,"score_gpt":0.25585636040526644,"score_spread":0.23455874171669128,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2025045943","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9869517,0.00061401754,0.010383824,0.00010848611,0.0000056959325,0.0000075946896,0.00003231622,0.000033025743,0.0018634577],"genre_scores_gemma":[0.9950275,0.00031548314,0.0034186067,0.000010381264,0.0000057984294,0.0000072616326,0.0000311765,0.000011210563,0.0011726086],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999651,0.0000055620953,0.0000025318238,0.000007183259,0.000013898629,0.0000057156335],"domain_scores_gemma":[0.99987304,0.000057002828,0.000033767967,0.000008820578,0.000017713806,0.000009617053],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009918071,0.00023140735,0.00013749511,0.0002766317,0.0002970423,0.0004629093,0.00023833028,0.00029370558,0.00044547993],"category_scores_gemma":[0.00036667625,0.0001525999,0.00016412222,0.00017449608,0.00036935275,0.00037903318,0.00019531848,0.00017534134,0.00009941763],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009214746,0.00005181871,0.004937315,0.00012040321,0.000033678716,0.00052304834,0.00019943809,0.048793588,0.9216857,0.017413273,0.00017595247,0.0059735305],"study_design_scores_gemma":[0.000025360772,0.00007593709,0.0067166016,0.000008742669,0.00002446544,0.00032787136,0.00007009564,0.71646047,0.26784617,0.0077001886,0.0007260307,0.000018102106],"about_ca_topic_score_codex":0.00111591,"about_ca_topic_score_gemma":0.0014088067,"teacher_disagreement_score":0.00111591,"about_ca_system_score_codex":0.0004271861,"about_ca_system_score_gemma":0.00012212998,"threshold_uncertainty_score":0.0030994415},"labels":[],"label_agreement":null},{"id":"W2025921879","doi":"10.1103/physrevb.63.054526","title":"Interlayer coupling and<b><i>c</i></b>-axis quasiparticle transport in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>cuprates","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Quasiparticle; Coupling (piping); Physics; Zero (linguistics); Condensed matter physics; Paramagnetism; Conductivity; Superfluidity; Amplitude; Field (mathematics); Sigma; Electrical resistivity and conductivity; Coupling constant; Quantum mechanics; Materials science; Superconductivity; Mathematics","score_opus":0.018371756266201935,"score_gpt":0.2572308104632586,"score_spread":0.23885905419705664,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2025921879","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9924184,0.00068461057,0.0024621265,0.0001615238,0.00003866425,0.0000085870215,0.000085498126,0.000105926854,0.0040346766],"genre_scores_gemma":[0.99827754,0.00021847697,0.0005866541,0.00002108991,0.0000062381146,0.000010862701,0.00008048187,0.000032730397,0.0007660429],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999014,0.00002496501,0.000005540444,0.00001631659,0.000018632316,0.000033239394],"domain_scores_gemma":[0.9997253,0.000083134706,0.00007681176,0.000020171356,0.00004387213,0.000050689698],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038997357,0.00037294367,0.0002506767,0.0005564773,0.000561288,0.00097226875,0.0004464892,0.0004307402,0.0019968515],"category_scores_gemma":[0.00052802975,0.00034195994,0.00019932467,0.0002790869,0.0005007037,0.0005519862,0.00044258178,0.00045880247,0.0002951439],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013688467,0.00063333206,0.0072500096,0.0009455966,0.0001197932,0.00067575875,0.0006465509,0.04245377,0.80026376,0.12876001,0.0050005275,0.011881973],"study_design_scores_gemma":[0.00011597703,0.00057842454,0.024155125,0.00019469621,0.00013047659,0.0004323068,0.00043491408,0.45298836,0.4905259,0.027146189,0.0030570964,0.00024062392],"about_ca_topic_score_codex":0.0025373178,"about_ca_topic_score_gemma":0.003022449,"teacher_disagreement_score":0.0025373178,"about_ca_system_score_codex":0.0007293838,"about_ca_system_score_gemma":0.0004173681,"threshold_uncertainty_score":0.006680131},"labels":[],"label_agreement":null},{"id":"W2026376168","doi":"10.1103/physrevb.68.085208","title":"Quantum interference control of free-carrier density in GaAs","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Laser-Matter Interactions and Applications","field":"Physics and Astronomy","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Photon; Atomic physics; Absorption (acoustics); Condensed matter physics; Interference (communication); Coherent control; Quantum mechanics; Quantum; Optics; Telecommunications","score_opus":0.013501183071896966,"score_gpt":0.29925434133465817,"score_spread":0.2857531582627612,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2026376168","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9773307,0.00016372185,0.018776203,0.000049537106,0.0000073755077,0.0000096306285,0.000011171,0.000046608915,0.0036052314],"genre_scores_gemma":[0.9968286,0.000053090058,0.0028654528,0.0000041790513,0.0000020311243,0.00000498543,0.0000054089915,0.0000049801743,0.00023120044],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99978393,0.000043788925,0.000006472185,0.000018775709,0.00011693472,0.000030215524],"domain_scores_gemma":[0.99962676,0.00023478,0.000052922594,0.00003463669,0.00003390297,0.000016877677],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002853424,0.00020369714,0.00012613181,0.00024769318,0.0002619837,0.00031870216,0.0004062504,0.00016351505,0.0006091261],"category_scores_gemma":[0.00078109774,0.0001134949,0.00017878896,0.00015336134,0.00069330074,0.0005341524,0.0002258016,0.00018021418,0.00006471329],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00033930814,0.00017642081,0.0035873835,0.00014195617,0.00004046499,0.00038755717,0.00039993218,0.09636891,0.7698368,0.11416511,0.000113028895,0.014443208],"study_design_scores_gemma":[0.00006502011,0.00045033416,0.0030130816,0.000013075004,0.000024356954,0.00018776928,0.00007366746,0.487524,0.49319154,0.014437189,0.0009823941,0.000037531263],"about_ca_topic_score_codex":0.00082136865,"about_ca_topic_score_gemma":0.00076218456,"teacher_disagreement_score":0.00082136865,"about_ca_system_score_codex":0.0005990772,"about_ca_system_score_gemma":0.00023646206,"threshold_uncertainty_score":0.004346609},"labels":[],"label_agreement":null},{"id":"W2028004374","doi":"10.1103/physrevb.65.125318","title":"Photonic crystal heterostructures: Waveguiding phenomena and methods of solution in an envelope function picture","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":47,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Photonic crystal; Cladding (metalworking); Optics; Guided-mode resonance; Heterojunction; Refractive index contrast; Perpendicular; Curvature; Yablonovite; Envelope (radar); Physics; Refractive index; Materials science; Optoelectronics; Photonic integrated circuit; Diffraction; Diffraction grating; Geometry; Mathematics","score_opus":0.020498656812649344,"score_gpt":0.3271691589622014,"score_spread":0.30667050214955205,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2028004374","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.010996962,0.0013029038,0.98004454,0.0002393538,0.00006209315,0.000046091638,0.000037990965,0.00008922741,0.0071808435],"genre_scores_gemma":[0.24489194,0.004466075,0.73463017,0.00022421633,0.00012654132,0.00050187943,0.00012573774,0.00020446733,0.014828953],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999824,0.00006001898,0.000009300023,0.000012454066,0.000078033394,0.000016225778],"domain_scores_gemma":[0.99984,0.000069835354,0.0000130668295,0.00003606811,0.000030324263,0.000010658989],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010306141,0.0005569824,0.0004236232,0.00052104343,0.00043378904,0.0008401445,0.0010283471,0.0010137246,0.0010465911],"category_scores_gemma":[0.0007990024,0.00028844745,0.00058817834,0.00054738537,0.00095679564,0.0012610015,0.00070217403,0.0010808845,0.0005802189],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000010088048,0.00004090521,0.00012263979,0.00008649886,0.000014117414,0.00008281209,0.00015513443,0.042661197,0.009040343,0.9301071,0.00057473115,0.017104426],"study_design_scores_gemma":[0.00001529756,0.000023218774,0.00011537215,0.000040245588,0.000005833857,0.00009557812,0.0000443482,0.6151481,0.0025530572,0.37477815,0.0071599563,0.00002078039],"about_ca_topic_score_codex":0.00060879294,"about_ca_topic_score_gemma":0.0005300501,"teacher_disagreement_score":0.0010465911,"about_ca_system_score_codex":0.00042419985,"about_ca_system_score_gemma":0.00049078086,"threshold_uncertainty_score":0.0054504275},"labels":[],"label_agreement":null},{"id":"W2028482830","doi":"10.1103/physrevb.64.195330","title":"Electron confinement and optical enhancement in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">S</mml:mi><mml:mi mathvariant=\"normal\">i</mml:mi><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">S</mml:mi><mml:mi mathvariant=\"normal\">i</mml:mi><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>superlattices","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor materials and devices","field":"Engineering","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences; Université de Montréal","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics","score_opus":0.014789507169574698,"score_gpt":0.2466499018800103,"score_spread":0.2318603947104356,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2028482830","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98369193,0.00015074738,0.0042214915,0.0002406718,0.000016438291,0.000014335614,0.00011510595,0.00007366942,0.011475696],"genre_scores_gemma":[0.9954391,0.000101353704,0.0027398993,0.000023308972,0.0000033408896,0.0000151993645,0.00009724575,0.00001938105,0.0015611475],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999025,0.000013232582,0.000002308513,0.0000063784537,0.000044249624,0.000031417625],"domain_scores_gemma":[0.99987686,0.000051698582,0.000013438441,0.000012377452,0.000029199979,0.00001636345],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002053428,0.00025487857,0.0003738466,0.00028230526,0.00037440975,0.0006538134,0.0006934227,0.00032325863,0.0055337977],"category_scores_gemma":[0.0002826535,0.00020388213,0.00023100837,0.0003123873,0.00046654578,0.00047454817,0.00033249773,0.00037268118,0.00028801546],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00091557734,0.00040312286,0.007485203,0.0012111455,0.000110043715,0.0012031199,0.0005329157,0.43453446,0.38166267,0.15034464,0.004004514,0.017592572],"study_design_scores_gemma":[0.00014972934,0.00033375138,0.0028109308,0.000026755866,0.000026542435,0.0000671467,0.00025715915,0.91844165,0.06938751,0.0066955215,0.0017721734,0.000031169227],"about_ca_topic_score_codex":0.00504737,"about_ca_topic_score_gemma":0.010238328,"teacher_disagreement_score":0.0055337977,"about_ca_system_score_codex":0.0005856197,"about_ca_system_score_gemma":0.0005510298,"threshold_uncertainty_score":0.018512368},"labels":[],"label_agreement":null},{"id":"W2028729495","doi":"10.1103/physrevb.67.060503","title":"Coexistence of bulk antiferromagnetic order and superconductivity in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">QED</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>theory of copper oxides","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Antiferromagnetism; Superconductivity; Cuprate; Phase diagram; Condensed matter physics; Order (exchange); Physics; Limit (mathematics); Phase (matter); Symmetry (geometry); Symmetry breaking; Mathematical physics; Quantum mechanics; Mathematics; Mathematical analysis; Geometry","score_opus":0.02073183652151686,"score_gpt":0.2555453187146071,"score_spread":0.23481348219309026,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2028729495","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98161376,0.0016348544,0.005133893,0.00032852558,0.000039366994,0.000008777063,0.00006563422,0.000053089443,0.011122164],"genre_scores_gemma":[0.99737144,0.00032519829,0.0013082116,0.000019929093,0.000020110047,0.0000057260418,0.00003374242,0.000006706831,0.00090900797],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999211,0.000021688045,0.0000051762663,0.00001623712,0.000019739113,0.000016031401],"domain_scores_gemma":[0.99984396,0.00006757202,0.000034027216,0.000014033323,0.00002117805,0.000019275423],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029341647,0.00016336187,0.00039460626,0.0005336288,0.0004457862,0.0011186715,0.0003219607,0.0003194036,0.0010177458],"category_scores_gemma":[0.000524226,0.00020744195,0.00021689119,0.00033454003,0.0011139032,0.0011455204,0.0003372139,0.00035068693,0.00013262901],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00056450017,0.00012401732,0.008243704,0.00062257645,0.00006453715,0.001503296,0.00060758926,0.015013268,0.08488866,0.8680326,0.003782477,0.016552784],"study_design_scores_gemma":[0.0002146928,0.00031231495,0.012360403,0.00007146806,0.00007919353,0.0010992034,0.00047576698,0.3952341,0.039484054,0.54627055,0.0043325187,0.00006568167],"about_ca_topic_score_codex":0.0020084593,"about_ca_topic_score_gemma":0.00235125,"teacher_disagreement_score":0.0020084593,"about_ca_system_score_codex":0.00058362324,"about_ca_system_score_gemma":0.00040357042,"threshold_uncertainty_score":0.004234493},"labels":[],"label_agreement":null},{"id":"W2029069016","doi":"10.1103/physrevb.66.193405","title":"Luttinger parameter<i>g</i>for metallic carbon nanotubes and related systems","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Toronto Metropolitan University","funders":"","keywords":"Luttinger liquid; Carbon nanotube; Zigzag; Condensed matter physics; Fermi level; Materials science; Random phase approximation; Carbon fibers; Physics; Phase (matter); Quantum mechanics; Nanotechnology; Electron; Mathematics","score_opus":0.019123040026509646,"score_gpt":0.2759931344956495,"score_spread":0.25687009446913983,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2029069016","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.45457342,0.1031586,0.33086324,0.0070110545,0.0018316815,0.0001559205,0.00077666936,0.002536929,0.0990926],"genre_scores_gemma":[0.95345783,0.009803502,0.029270755,0.0003972886,0.0002950162,0.000115930874,0.00026145863,0.0001998591,0.0061983243],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998273,0.000044930646,0.000013454881,0.000028789309,0.00006279749,0.000022760667],"domain_scores_gemma":[0.999696,0.0001576086,0.000051280334,0.00005038891,0.000030865285,0.000013879422],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00048100256,0.0003823776,0.00053141796,0.0014506385,0.0005865121,0.0008937977,0.0005056341,0.00094495574,0.0015453612],"category_scores_gemma":[0.0013397858,0.00025494833,0.000466669,0.0006767075,0.001239861,0.001266606,0.00042060687,0.000761085,0.00035520914],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000038301525,0.000025602969,0.00039698568,0.0003448995,0.000021556385,0.00030749486,0.00014144568,0.0421192,0.010490301,0.9308423,0.0031094009,0.012162588],"study_design_scores_gemma":[0.000009528254,0.000043421496,0.00054006034,0.000059522918,0.000021621661,0.00028252645,0.000026554826,0.2591821,0.009088132,0.722783,0.007908944,0.00005462755],"about_ca_topic_score_codex":0.00052372576,"about_ca_topic_score_gemma":0.0004390093,"teacher_disagreement_score":0.0015453612,"about_ca_system_score_codex":0.0009833205,"about_ca_system_score_gemma":0.00035926438,"threshold_uncertainty_score":0.007134557},"labels":[],"label_agreement":null},{"id":"W2029518893","doi":"10.1103/physrevb.67.174110","title":"Brillouin and Raman spectroscopy of the ferroelastic rutile-to-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CaCl</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>transition in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">SnO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>at high pressure","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":72,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"University of Waterloo; Deutsche Forschungsgemeinschaft","keywords":"Raman spectroscopy; Brillouin zone; Rutile; Brillouin Spectroscopy; Phase transition; Spectroscopy; Brillouin scattering; Materials science; Raman scattering; Phase (matter); Order (exchange); Physics; Analytical Chemistry (journal); Nuclear magnetic resonance; Condensed matter physics; Optics; Chemistry; Laser","score_opus":0.012675110543165691,"score_gpt":0.23494907899646894,"score_spread":0.22227396845330324,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2029518893","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98149383,0.00034791892,0.002871977,0.00032950984,0.000059157243,0.000013633677,0.00069495884,0.00016122758,0.014027708],"genre_scores_gemma":[0.9857394,0.000236972,0.0015681187,0.00008695327,0.000009652808,0.000016695027,0.00059871783,0.00007762417,0.011665812],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998629,0.0000127681415,0.0000028777802,0.00002504761,0.00005997509,0.000036404595],"domain_scores_gemma":[0.9998653,0.00004366846,0.000026193617,0.000011632085,0.00003745749,0.000015757074],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015266103,0.00025940174,0.00013373882,0.00036084538,0.0004283403,0.00029419854,0.00045649256,0.00038211248,0.011097799],"category_scores_gemma":[0.0003543414,0.00019557806,0.00013081782,0.00024297833,0.000344598,0.0003179289,0.00023585476,0.0007744882,0.0010190358],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014248234,0.00005226398,0.000549546,0.000085712956,0.0000111737945,0.00019082686,0.00024568546,0.00053594157,0.9902406,0.0018938753,0.0021490012,0.0039029715],"study_design_scores_gemma":[0.000013595686,0.00012627966,0.009572619,0.000016165968,0.000006054969,0.00014664701,0.00029811807,0.0071716765,0.97703457,0.00031344302,0.005273702,0.000027037504],"about_ca_topic_score_codex":0.0032791253,"about_ca_topic_score_gemma":0.0052486416,"teacher_disagreement_score":0.011097799,"about_ca_system_score_codex":0.00029542457,"about_ca_system_score_gemma":0.0001719602,"threshold_uncertainty_score":0.037125826},"labels":[],"label_agreement":null},{"id":"W2029701911","doi":"10.1103/physrevb.63.212201","title":"Formation of amorphous ice by careful annealing of ice XII","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Material Dynamics and Properties","field":"Materials Science","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences","funders":"","keywords":"Amorphous ice; Amorphous solid; Raman spectroscopy; Annealing (glass); Materials science; Spectral line; Ice Ih; Crystallography; Isothermal process; Analytical Chemistry (journal); Physics; Nuclear magnetic resonance; Molecule; Chemistry; Optics; Thermodynamics; Composite material","score_opus":0.015282066287660129,"score_gpt":0.2783134728874903,"score_spread":0.26303140659983015,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2029701911","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9927817,0.0005282759,0.0037397393,0.00002830744,0.000017271248,0.000031751697,0.00021933841,0.000053597927,0.0026000135],"genre_scores_gemma":[0.9947056,0.0003826837,0.0028508382,0.000024480767,0.000006491585,0.00002773664,0.00048432735,0.00008045066,0.001437404],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999074,0.0000054397897,0.0000071464465,0.000032653003,0.000023116052,0.000024297398],"domain_scores_gemma":[0.9998965,0.000028793442,0.000022063334,0.000024275754,0.000020181025,0.000008168714],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010400416,0.00020187386,0.0002570366,0.00012360066,0.00015982901,0.00024389515,0.0001895133,0.00012155718,0.00094287243],"category_scores_gemma":[0.00030385368,0.00021874413,0.00017305271,0.00017475167,0.00015272625,0.00013165777,0.00018656666,0.0004037655,0.00018948402],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00005087473,0.0000075150588,0.00038627972,0.000030671366,0.000008864789,0.000036726782,0.000040234016,0.00022213774,0.9980464,0.000099381585,0.000040228148,0.0010306118],"study_design_scores_gemma":[0.0000053996637,0.000103488135,0.004573192,0.0000053062254,0.000014438858,0.00006265193,0.000024535735,0.0011024909,0.9925828,0.0000381461,0.0014844469,0.0000031306759],"about_ca_topic_score_codex":0.0009314212,"about_ca_topic_score_gemma":0.0018212377,"teacher_disagreement_score":0.00094287243,"about_ca_system_score_codex":0.00015753297,"about_ca_system_score_gemma":0.00013597863,"threshold_uncertainty_score":0.0031542778},"labels":[],"label_agreement":null},{"id":"W2031981834","doi":"10.1103/physrevb.67.140301","title":"Pressure-induced phonon instabilities in copper chloride","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Solid-state spectroscopy and crystallography","field":"Materials Science","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences","funders":"","keywords":"Phonon; Raman spectroscopy; Condensed matter physics; Anomaly (physics); Materials science; Zinc; Copper; Soft modes; Resonance (particle physics); Fermi level; Fermi resonance; Physics; Atomic physics; Quantum mechanics","score_opus":0.0136149333898843,"score_gpt":0.30246745969635785,"score_spread":0.28885252630647357,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2031981834","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9984981,0.00026017198,0.00041037306,0.000046552406,0.000005425931,0.000004978957,0.000060025366,0.000064682856,0.000649664],"genre_scores_gemma":[0.99917954,0.00010012722,0.00020678456,0.0000064836076,0.0000025790475,0.0000071241643,0.000041649844,0.00001640222,0.00043917],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998135,0.000019654097,0.0000068059953,0.000035210935,0.00009267021,0.000032129094],"domain_scores_gemma":[0.9997644,0.00006524322,0.000060226568,0.000012985147,0.00007817436,0.000018998362],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014051214,0.00024596538,0.0002468273,0.00036222627,0.00038316374,0.0004486401,0.00050445326,0.00029834275,0.0013110396],"category_scores_gemma":[0.0005960867,0.00023365993,0.00011260823,0.00036051974,0.00046832362,0.00033744302,0.00036859632,0.00027101816,0.00025670178],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002764459,0.000022285143,0.0012721696,0.00009232003,0.000006514679,0.00021641036,0.00014900629,0.00090332114,0.99396765,0.00015628731,0.00015011408,0.00278745],"study_design_scores_gemma":[0.000019342664,0.0001874583,0.007606835,0.000008137498,0.000005769987,0.00014109694,0.00009643398,0.0076933983,0.98344064,0.00012372146,0.0006587516,0.000018468221],"about_ca_topic_score_codex":0.0028011254,"about_ca_topic_score_gemma":0.0020572187,"teacher_disagreement_score":0.0028011254,"about_ca_system_score_codex":0.00062273245,"about_ca_system_score_gemma":0.00020131719,"threshold_uncertainty_score":0.005569637},"labels":[],"label_agreement":null},{"id":"W2032576502","doi":"10.1103/physrevb.61.r7873","title":"Probing the polarity of ferroelectric thin films with x-ray standing waves","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Electronic and Structural Properties of Oxides","field":"Materials Science","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Advanced Micro Devices (Canada)","funders":"","keywords":"Thin film; Ferroelectricity; Diffraction; Polarity (international relations); Materials science; Excitation; Standing wave; Optics; Condensed matter physics; Bragg's law; Physics; Optoelectronics; Nanotechnology; Dielectric; Chemistry","score_opus":0.012898154208741922,"score_gpt":0.2610531551936321,"score_spread":0.24815500098489018,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2032576502","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98267317,0.0015187046,0.011226995,0.00018094506,0.000052933738,0.000023032111,0.00012388195,0.00011646272,0.0040838635],"genre_scores_gemma":[0.98162913,0.0011942561,0.014797798,0.000063748565,0.000024190203,0.000027474269,0.00011231089,0.000020468651,0.0021306218],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992,0.000008187694,0.0000039973074,0.000015637783,0.00004160867,0.000010542233],"domain_scores_gemma":[0.999846,0.00005473105,0.00003786455,0.000011232763,0.00003373603,0.000016421911],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000100127094,0.00026775405,0.0001490579,0.00035942538,0.00018211882,0.00042279696,0.0003257484,0.0002752849,0.0012356091],"category_scores_gemma":[0.00023085136,0.00026931838,0.000091452566,0.00021114743,0.00036151748,0.00030068515,0.0002538077,0.0006706384,0.00022492664],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000023523959,0.0000038481326,0.00016937702,0.00002686687,0.0000026336704,0.000024481982,0.00001432069,0.000023652838,0.9973653,0.00032776056,0.000036953996,0.001981325],"study_design_scores_gemma":[0.000010006794,0.000040528445,0.0012618109,0.0000039134843,0.000004496547,0.00014033633,0.000022914846,0.00075779954,0.9969585,0.00011631083,0.00067903707,0.00000446244],"about_ca_topic_score_codex":0.00019552231,"about_ca_topic_score_gemma":0.00043219887,"teacher_disagreement_score":0.0012356091,"about_ca_system_score_codex":0.0001824179,"about_ca_system_score_gemma":0.00010392247,"threshold_uncertainty_score":0.0041335225},"labels":[],"label_agreement":null},{"id":"W2033669340","doi":"10.1103/physrevb.61.11514","title":"Monte Carlo study of the anisotropic Heisenberg antiferromagnet on the triangular lattice","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Antiferromagnetism; Condensed matter physics; Physics; Monte Carlo method; Anisotropy; Hexagonal lattice; Heisenberg model; Vortex; Lattice (music); Quantum mechanics; Mathematics; Mechanics","score_opus":0.009908192444273415,"score_gpt":0.26790642623562627,"score_spread":0.25799823379135284,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2033669340","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98519415,0.0002709424,0.008738493,0.00042344688,0.000026394175,0.00004467901,0.0001470252,0.00006322293,0.0050916444],"genre_scores_gemma":[0.99309456,0.00010747786,0.005630436,0.00006402953,0.000020632384,0.00005864853,0.0001169909,0.000023531931,0.0008838094],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9995678,0.00019344183,0.000013053757,0.000040503823,0.00007630825,0.000108822765],"domain_scores_gemma":[0.99624544,0.0023542305,0.00034046607,0.00027432002,0.00038911286,0.00039647988],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001451536,0.00040650603,0.0011724958,0.00074379635,0.0013282468,0.0011673204,0.0016097733,0.001261914,0.0025154925],"category_scores_gemma":[0.0035537416,0.0005091861,0.00063189893,0.0008956417,0.0020834752,0.0011615802,0.00056913734,0.0011473879,0.00015322189],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005014927,0.00030135326,0.005078503,0.00011255649,0.00012424932,0.0005740882,0.00015781207,0.8955628,0.0024125488,0.09187141,0.0010691566,0.0022340587],"study_design_scores_gemma":[0.000058686895,0.000034207256,0.00040003666,0.0000058109786,0.000011231482,0.000023866512,0.000022565308,0.9947949,0.0002988772,0.004197215,0.00014135284,0.000011317542],"about_ca_topic_score_codex":0.020318097,"about_ca_topic_score_gemma":0.015837772,"teacher_disagreement_score":0.020318097,"about_ca_system_score_codex":0.0015231335,"about_ca_system_score_gemma":0.0014954582,"threshold_uncertainty_score":0.04039967},"labels":[],"label_agreement":null},{"id":"W2034753515","doi":"10.1103/physrevb.66.165403","title":"Statistical analysis of the spatial distribution of simulated island formation on a surface","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"nanoparticles nucleation surface interactions","field":"Earth and Planetary Sciences","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University","funders":"","keywords":"Ostwald ripening; Cluster (spacecraft); Statistical physics; Diffusion; Spatial distribution; Deposition (geology); Materials science; Chemical physics; Biological system; Physics; Computational physics; Nanotechnology; Statistics; Computer science; Thermodynamics; Mathematics","score_opus":0.017493619612074986,"score_gpt":0.27413868747558484,"score_spread":0.2566450678635099,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2034753515","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9930761,0.00003050515,0.0061655724,0.000033052733,0.000005672496,0.000010471136,0.00014430551,0.00007746314,0.00045685147],"genre_scores_gemma":[0.99860364,0.000012136174,0.0010731253,0.000003743904,0.000002072992,0.000009740946,0.00016896645,0.000008634345,0.00011798628],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998559,0.00003498388,0.000007893131,0.0000363652,0.000033827728,0.000031057258],"domain_scores_gemma":[0.9969566,0.0022691165,0.00022130387,0.00018193945,0.00026917976,0.000101919206],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000554694,0.00016676437,0.00026737267,0.0005229321,0.00027100832,0.00033037816,0.00046589714,0.0004476942,0.0012976292],"category_scores_gemma":[0.002287626,0.00014240401,0.0003724198,0.00037427203,0.00038211592,0.00025239383,0.00017906724,0.00035594945,0.000096699194],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020546117,0.00012520973,0.027934793,0.00007797014,0.00009648782,0.00017478221,0.00006714379,0.9509436,0.011033325,0.003677791,0.0005399945,0.0051234793],"study_design_scores_gemma":[0.000004506163,0.000050818737,0.005334102,0.0000017493322,0.0000075896132,0.000022586211,0.000019860558,0.99154234,0.0025007776,0.00044226318,0.000067066656,0.0000062823146],"about_ca_topic_score_codex":0.004485933,"about_ca_topic_score_gemma":0.0029943248,"teacher_disagreement_score":0.004485933,"about_ca_system_score_codex":0.00056797767,"about_ca_system_score_gemma":0.00030939994,"threshold_uncertainty_score":0.008919656},"labels":[],"label_agreement":null},{"id":"W2035531711","doi":"10.1103/physrevb.61.2090","title":"Two-dimensional vector-coupled-mode theory for textured planar waveguides","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":156,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Planar; Grating; Polarization (electrochemistry); Physics; Coupled mode theory; Optics; Waveguide; Coupling (piping); Materials science; Refractive index; Computer science","score_opus":0.010028508746871658,"score_gpt":0.3174904548637237,"score_spread":0.307461946116852,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2035531711","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.1386626,0.000842249,0.82399285,0.0010954381,0.0001948432,0.0000773761,0.00019197818,0.00018871744,0.034754008],"genre_scores_gemma":[0.8538871,0.0010999005,0.12210525,0.00040479173,0.00014942784,0.00033721756,0.00012932875,0.00008652253,0.021800457],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99985504,0.000036508543,0.0000043427026,0.000017520266,0.00006459766,0.000021999409],"domain_scores_gemma":[0.9998741,0.000039694707,0.000022188831,0.000018740477,0.000028931798,0.000016357026],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002739522,0.0004729786,0.0004466339,0.00048318718,0.00042191803,0.00082081906,0.00103714,0.000998294,0.0015237747],"category_scores_gemma":[0.00040851271,0.0002637224,0.00057239376,0.00041166737,0.0009824595,0.000977579,0.0005424284,0.00069696194,0.00025942523],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000015883998,0.000031319607,0.00018890087,0.00004094254,0.0000142527915,0.00015182389,0.00010066722,0.22523843,0.0068808286,0.764276,0.00058556494,0.0024753816],"study_design_scores_gemma":[0.000013679221,0.000015940568,0.00009321389,0.0000042317856,0.0000037018233,0.00005594901,0.00002460286,0.89656365,0.0004411146,0.10146905,0.0013047012,0.00001005805],"about_ca_topic_score_codex":0.0022706816,"about_ca_topic_score_gemma":0.0013825584,"teacher_disagreement_score":0.0022706816,"about_ca_system_score_codex":0.00087516534,"about_ca_system_score_gemma":0.0006703796,"threshold_uncertainty_score":0.0063497424},"labels":[],"label_agreement":null},{"id":"W2035743609","doi":"10.1103/physrevb.62.4630","title":"Charged excitons in a dilute two-dimensional electron gas in a high magnetic field","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":123,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Singlet state; Exciton; Oscillator strength; Bound state; Atomic physics; Magnetic field; Electron; Physics; Triplet state; Chemistry; Condensed matter physics; Spectral line; Quantum mechanics; Excited state","score_opus":0.004918778626861588,"score_gpt":0.2577537994558232,"score_spread":0.25283502082896164,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2035743609","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.73939,0.0018634059,0.16748802,0.0014351454,0.00028074178,0.00010101617,0.00014248375,0.00022711499,0.089072034],"genre_scores_gemma":[0.9734622,0.0005972153,0.0118928505,0.00023206104,0.00010391257,0.000094895135,0.000059064856,0.000036135385,0.013521719],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999889,0.00003441694,0.0000032754212,0.000009589293,0.000040800285,0.000022932636],"domain_scores_gemma":[0.9999062,0.00003148484,0.000012021326,0.000008324484,0.000016618535,0.000025385907],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028534976,0.0005707891,0.00054381555,0.00062556844,0.0011427467,0.001190524,0.000872844,0.0008475056,0.0015165319],"category_scores_gemma":[0.00028526218,0.00032985196,0.00046755973,0.00034882748,0.0020078584,0.0009734046,0.0008838253,0.00066010735,0.00019132037],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007920832,0.000079619254,0.0007967771,0.00016424418,0.000033238262,0.0010172258,0.00023166736,0.22873834,0.016223345,0.74879175,0.0008207609,0.0030237234],"study_design_scores_gemma":[0.00008203422,0.00014646653,0.00073952327,0.000032127362,0.000018719415,0.0003129695,0.00012824085,0.8246031,0.0025602921,0.16887598,0.0024565153,0.00004404178],"about_ca_topic_score_codex":0.0017412921,"about_ca_topic_score_gemma":0.0017267788,"teacher_disagreement_score":0.0017412921,"about_ca_system_score_codex":0.0011976092,"about_ca_system_score_gemma":0.00068556814,"threshold_uncertainty_score":0.008689284},"labels":[],"label_agreement":null},{"id":"W2037106435","doi":"10.1103/physrevb.62.11405","title":"Microstructural studies of organic light-emitting devices by Monte Carlo simulation of two-dimensional triangles","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic Light-Emitting Diodes Research","field":"Engineering","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Amorphous solid; Materials science; Monte Carlo method; Impurity; OLED; Annealing (glass); Relaxation (psychology); Crystallization; Molecular physics; Condensed matter physics; Crystallography; Optics; Chemical physics; Physics; Layer (electronics); Nanotechnology; Thermodynamics; Composite material; Chemistry","score_opus":0.01728912950263882,"score_gpt":0.32642635601073683,"score_spread":0.309137226508098,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2037106435","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96606433,0.00024221945,0.018215135,0.00043684404,0.000040991643,0.00007089154,0.000428909,0.00011844798,0.014382219],"genre_scores_gemma":[0.9905723,0.00013572014,0.0072104703,0.00007071391,0.000011592801,0.000115803196,0.00024395752,0.000042067084,0.0015974442],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998301,0.000043512573,0.000006338282,0.000020682222,0.00004632684,0.000052954263],"domain_scores_gemma":[0.99912316,0.00058591657,0.000066757195,0.000055824126,0.00010731554,0.00006111012],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003623297,0.00036261685,0.0006440084,0.0005536315,0.0007008497,0.0006195286,0.001145156,0.0011976395,0.003982387],"category_scores_gemma":[0.0013219549,0.00039739587,0.00080241845,0.0005697341,0.00070300867,0.0005876864,0.00041751,0.0006222293,0.00018105157],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000038718885,0.000039300685,0.00084215373,0.000027712309,0.00001664613,0.00006227491,0.000031449992,0.9922496,0.0011733152,0.004726528,0.00013837325,0.0006539279],"study_design_scores_gemma":[0.00000822207,0.000011536014,0.00016769257,0.0000020392472,0.0000027520348,0.0000049713294,0.000009827587,0.99913955,0.00016310696,0.0003923541,0.00009533755,0.0000025906484],"about_ca_topic_score_codex":0.014977348,"about_ca_topic_score_gemma":0.009463414,"teacher_disagreement_score":0.014977348,"about_ca_system_score_codex":0.0013351828,"about_ca_system_score_gemma":0.0008107859,"threshold_uncertainty_score":0.029780328},"labels":[],"label_agreement":null},{"id":"W2037289400","doi":"10.1103/physrevb.66.033104","title":"Transport properties in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>d</mml:mi></mml:math>-density wave state: Wiedemann–Franz Law","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Scattering; Limit (mathematics); Wiedemann–Franz law; Zero (linguistics); Physics; Condensed matter physics; Electrical resistivity and conductivity; Zero temperature; State (computer science); Law; Quantum mechanics; Mathematics; Algorithm; Mathematical analysis; Philosophy","score_opus":0.026146843088277725,"score_gpt":0.245535939394689,"score_spread":0.2193890963064113,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2037289400","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.82273924,0.004202393,0.10017897,0.0023851776,0.0003604517,0.00008328343,0.0006606675,0.0003090599,0.069080785],"genre_scores_gemma":[0.9703545,0.0025554413,0.011342368,0.00030411454,0.0001138858,0.00006091881,0.000334378,0.000104529616,0.014829822],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997727,0.000036630874,0.00001605912,0.000049007336,0.000064008564,0.00006159795],"domain_scores_gemma":[0.99950945,0.0001575293,0.000094814466,0.00010134325,0.0001018733,0.000034944955],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006770578,0.0005004868,0.00078859646,0.0016340625,0.00064272044,0.002308636,0.00096021517,0.0011831862,0.0038086206],"category_scores_gemma":[0.0015711877,0.00032244725,0.00081915344,0.0011387634,0.0018153449,0.0033961555,0.00080625265,0.001145371,0.0010025821],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000069510534,0.00009625388,0.00047295116,0.00015219754,0.000022415208,0.0002468413,0.00022691904,0.017230386,0.019771608,0.95496744,0.002145087,0.004598296],"study_design_scores_gemma":[0.00003353434,0.00013156574,0.0012101682,0.00008267573,0.000032662938,0.00039479212,0.0001777628,0.43854332,0.012506105,0.54219204,0.0046124063,0.00008288754],"about_ca_topic_score_codex":0.0019928995,"about_ca_topic_score_gemma":0.0010211354,"teacher_disagreement_score":0.0038086206,"about_ca_system_score_codex":0.0010501806,"about_ca_system_score_gemma":0.00050326315,"threshold_uncertainty_score":0.012741089},"labels":[],"label_agreement":null},{"id":"W2037918213","doi":"10.1103/physrevb.66.174501","title":"Order parameter symmetry in ferromagnetic superconductors","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Condensed matter physics; Physics; Symmetry (geometry); Superconductivity; Ferromagnetism; Electron; Degeneracy (biology); Coupling parameter; Quantum mechanics; Mathematics; Geometry","score_opus":0.02262098179436464,"score_gpt":0.27974035645038386,"score_spread":0.25711937465601925,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2037918213","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9817853,0.00050746877,0.0066097495,0.00021647557,0.000027398619,0.000009135107,0.00003076587,0.000045594934,0.010768193],"genre_scores_gemma":[0.9972205,0.00018532781,0.0016689391,0.000011036765,0.000016984679,0.0000070038022,0.000026781727,0.000010477718,0.00085299904],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999534,0.000010567589,0.000002167236,0.0000055605665,0.00001454928,0.00001380157],"domain_scores_gemma":[0.99986863,0.000030166371,0.00004281295,0.000018006533,0.0000218345,0.000018556237],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000119443124,0.00013794858,0.00016116763,0.0004759539,0.00044491887,0.00051043084,0.00020658098,0.0002519685,0.0007535111],"category_scores_gemma":[0.0005379182,0.00009926058,0.00015722848,0.00025800001,0.0009999064,0.00057535677,0.00020943173,0.00024829662,0.00012807692],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012327699,0.0000635215,0.0029846919,0.00011733425,0.000015154459,0.000612062,0.000690351,0.017983193,0.053707775,0.9087398,0.0016515937,0.013311186],"study_design_scores_gemma":[0.00008349435,0.00011845005,0.007697948,0.00003591335,0.000019428788,0.0007979188,0.0005264371,0.11833165,0.013880159,0.8538199,0.004648444,0.000040314553],"about_ca_topic_score_codex":0.0010684646,"about_ca_topic_score_gemma":0.001253483,"teacher_disagreement_score":0.0010684646,"about_ca_system_score_codex":0.0004036787,"about_ca_system_score_gemma":0.0003145453,"threshold_uncertainty_score":0.002928853},"labels":[],"label_agreement":null},{"id":"W2038249721","doi":"10.1103/physrevb.63.134417","title":"Temperature evolution of the quantum gap in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">Cs</mml:mi><mml:mi mathvariant=\"normal\">Ni</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cl</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Canadian Institute for Advanced Research","funders":"","keywords":"Physics; Renormalization; Cutoff; Excitation; Scaling; Mass gap; Antiferromagnetism; Condensed matter physics; Dispersion (optics); Quantum mechanics; Mathematics; Geometry","score_opus":0.015738238917198895,"score_gpt":0.24527735853602975,"score_spread":0.22953911961883086,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2038249721","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9842865,0.00015346873,0.0038007814,0.00024740142,0.000045330893,0.0000041097082,0.0004339157,0.00036173748,0.010666938],"genre_scores_gemma":[0.9963456,0.000037155405,0.0008364779,0.000018826944,0.0000031237971,0.0000057028747,0.0002742555,0.000060457685,0.00241849],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999101,0.0000115279345,0.000002711153,0.00002878203,0.000023808972,0.000023036144],"domain_scores_gemma":[0.9998091,0.00007771756,0.000039703824,0.00001830122,0.000031172687,0.00002398443],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001464179,0.00011711864,0.00014101145,0.00028690524,0.0003968921,0.00044782867,0.00038534586,0.00028368342,0.0082783485],"category_scores_gemma":[0.00038133937,0.00013972132,0.00010616006,0.00020997597,0.00055452035,0.00053728867,0.00024070483,0.0006027326,0.0008639037],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011637794,0.00031077283,0.007011149,0.0002917776,0.000053551623,0.0004539368,0.0010744575,0.032345675,0.7300531,0.19728993,0.011820529,0.018131364],"study_design_scores_gemma":[0.00006168579,0.00059721497,0.023219638,0.000035745248,0.000025205845,0.00028100552,0.00042633287,0.18565115,0.74913377,0.03146887,0.008985002,0.000114487055],"about_ca_topic_score_codex":0.0013741526,"about_ca_topic_score_gemma":0.0014757835,"teacher_disagreement_score":0.0082783485,"about_ca_system_score_codex":0.000665388,"about_ca_system_score_gemma":0.00026680532,"threshold_uncertainty_score":0.027693808},"labels":[],"label_agreement":null},{"id":"W2038500648","doi":"10.1103/physrevb.61.10015","title":"Quantum dynamics of charged and neutral magnetic solitons: Spin-charge separation in the one-dimensional Hubbard model","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Physics; Antiferromagnetism; Spin (aerodynamics); Hubbard model; Polaron; Condensed matter physics; Charge (physics); Quantum tunnelling; Bethe ansatz; Quantum mechanics; Ansatz; Quantum; Electron","score_opus":0.018191605810485872,"score_gpt":0.30254170360722643,"score_spread":0.2843500977967406,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2038500648","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96766853,0.00016061582,0.023270765,0.00035606304,0.00003936289,0.000011317694,0.000021198386,0.00010804657,0.008364175],"genre_scores_gemma":[0.9975412,0.00004033191,0.0014956774,0.000024040346,0.0000069610865,0.0000059255035,0.0000082144,0.000007678482,0.000869843],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998809,0.000029158246,0.0000036542492,0.000009544928,0.000034954475,0.000041753716],"domain_scores_gemma":[0.9997942,0.00006544539,0.000041045274,0.000023949056,0.00002454441,0.000050873645],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029163546,0.000236064,0.0003055228,0.00046507714,0.000633872,0.0008048064,0.0007570772,0.0006516103,0.0012371441],"category_scores_gemma":[0.00075339555,0.00015352228,0.00025235245,0.00029955807,0.0013651106,0.0009339627,0.0005807326,0.0004997977,0.00008978827],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015246632,0.00011054219,0.0018518806,0.000048563455,0.000030278336,0.0005781412,0.0004943991,0.16199316,0.024841651,0.8047342,0.0007381349,0.0044266074],"study_design_scores_gemma":[0.00003433648,0.000028062143,0.00063326437,0.000005871809,0.00000750781,0.00009491291,0.000092165035,0.89640754,0.0024732149,0.09996619,0.00023675055,0.000020230802],"about_ca_topic_score_codex":0.002850399,"about_ca_topic_score_gemma":0.0019277555,"teacher_disagreement_score":0.002850399,"about_ca_system_score_codex":0.0007429357,"about_ca_system_score_gemma":0.00048315173,"threshold_uncertainty_score":0.005667627},"labels":[],"label_agreement":null},{"id":"W2039752976","doi":"10.1103/physrevb.67.134430","title":"Muon spin relaxation study of exchange biased Co/CoO","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Basic Energy Sciences; Natural Sciences and Engineering Research Council of Canada","keywords":"Exchange bias; Condensed matter physics; Antiferromagnetism; Physics; Muon; Muon spin spectroscopy; Magnetic moment; Relaxation (psychology); Ferromagnetism; Spin (aerodynamics); Magnetization; Oscillation (cell signaling); Field (mathematics); Magnetic field; Nuclear physics; Magnetic anisotropy; Superconductivity; Chemistry","score_opus":0.026565578362490683,"score_gpt":0.3300324461515976,"score_spread":0.3034668677891069,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2039752976","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9990716,0.00015954462,0.00021212011,0.000020015872,0.000004775261,0.0000026611126,0.000024438647,0.0000065818017,0.00049825467],"genre_scores_gemma":[0.99911004,0.00012248519,0.0002521785,0.000012829747,0.0000030603096,0.000003820578,0.000053397107,0.0000054271645,0.00043657806],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99992657,0.00000858099,0.0000031307998,0.000018724451,0.000023072711,0.000019941182],"domain_scores_gemma":[0.9998814,0.000023324472,0.000029344073,0.000010447307,0.000036462738,0.000019071476],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010716649,0.00011314932,0.00017430102,0.00017712152,0.00028768642,0.0002477695,0.0002488187,0.00017601943,0.0011656554],"category_scores_gemma":[0.00031775952,0.00009933632,0.00005347042,0.00015388751,0.0002588254,0.00018684063,0.0001682135,0.0002688389,0.000111313326],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017243251,0.000017688619,0.00056995905,0.000046063964,0.0000073296424,0.00011085171,0.000055248143,0.00014257117,0.997609,0.00017067701,0.000028096,0.001070006],"study_design_scores_gemma":[0.0000248058,0.00021922641,0.009052237,0.0000113061415,0.000017790162,0.00014291711,0.00008841159,0.0031315885,0.9863723,0.00007174908,0.0008582091,0.000009557206],"about_ca_topic_score_codex":0.002392285,"about_ca_topic_score_gemma":0.0033596726,"teacher_disagreement_score":0.002392285,"about_ca_system_score_codex":0.0002433247,"about_ca_system_score_gemma":0.00015085454,"threshold_uncertainty_score":0.0047567487},"labels":[],"label_agreement":null},{"id":"W2039926601","doi":"10.1103/physrevb.65.024434","title":"Phase behavior of antiferromagnetic ultrathin magnetic films","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Memorial University of Newfoundland","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Condensed matter physics; Antiferromagnetism; Spins; Phase diagram; Physics; Phase boundary; Phase (matter); Exchange interaction; Magnetization; Phase transition; Monte Carlo method; Square lattice; Ising model; Materials science; Ferromagnetism; Magnetic field; Quantum mechanics","score_opus":0.015941594208354774,"score_gpt":0.31045774031326173,"score_spread":0.29451614610490695,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2039926601","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9971904,0.00021578641,0.0012174068,0.000045946734,0.0000068617005,0.000005053656,0.000033486336,0.000035183657,0.0012498249],"genre_scores_gemma":[0.9985197,0.0000880154,0.00093041593,0.000009490987,0.000002597477,0.000007386677,0.000057431218,0.000008367847,0.00037647883],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999614,0.0000065454933,0.000001784474,0.0000065259096,0.000015155492,0.00000859272],"domain_scores_gemma":[0.9998419,0.000067697656,0.00003287727,0.000008285956,0.000030929496,0.000018327286],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000094200404,0.00011325262,0.0001373701,0.00026258157,0.00026306772,0.0003049239,0.00023103325,0.00020706451,0.0012628536],"category_scores_gemma":[0.00043571176,0.00013229379,0.00007281266,0.00014562868,0.00030057164,0.00032918408,0.00009306567,0.00026522676,0.000068025874],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007500398,0.0003553244,0.011943225,0.00043958984,0.00011056569,0.000793586,0.00055091747,0.06885338,0.8620858,0.03478139,0.0014870169,0.017849166],"study_design_scores_gemma":[0.00027704533,0.0009977637,0.023686767,0.00006417106,0.000058180147,0.00048717286,0.00021404638,0.61209404,0.34402522,0.013558665,0.004485732,0.00005123101],"about_ca_topic_score_codex":0.0011971514,"about_ca_topic_score_gemma":0.0013864343,"teacher_disagreement_score":0.0012628536,"about_ca_system_score_codex":0.00031317963,"about_ca_system_score_gemma":0.00019648479,"threshold_uncertainty_score":0.004224658},"labels":[],"label_agreement":null},{"id":"W2041466104","doi":"10.1103/physrevb.68.104518","title":"Theory of spin response in underdoped cuprates as strongly fluctuating<i>d</i>-wave superconductors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Cuprate; Superconductivity; Condensed matter physics; Physics; Spin (aerodynamics); Quantum mechanics","score_opus":0.02593642852669396,"score_gpt":0.3060023064120758,"score_spread":0.28006587788538184,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2041466104","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9462662,0.0005926765,0.03621049,0.0005340046,0.000070773436,0.000048991173,0.00016189483,0.00023960664,0.01587548],"genre_scores_gemma":[0.99405575,0.00021887699,0.0038172589,0.0000875814,0.000028315239,0.000042285574,0.00008103533,0.00004884635,0.0016200283],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998337,0.000055502933,0.0000060522416,0.000012808686,0.000043206073,0.00004878951],"domain_scores_gemma":[0.99974066,0.000060472274,0.000058666206,0.000025444328,0.00005326978,0.000061490806],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00039429512,0.00058791885,0.0006241439,0.00071774353,0.000565085,0.0009918852,0.0011581652,0.00067809905,0.0015049931],"category_scores_gemma":[0.0007355858,0.00024103804,0.00046527383,0.00040148373,0.001396268,0.00081412186,0.0005247897,0.00046407408,0.00012734042],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002136165,0.0001417222,0.005086676,0.0002437929,0.00008723793,0.0007958774,0.00022281427,0.5960458,0.042500686,0.349721,0.0013746106,0.0035662304],"study_design_scores_gemma":[0.000029153618,0.000032905613,0.0012878609,0.000011319657,0.000012216284,0.000051806608,0.000040058403,0.97956437,0.0011472527,0.017479207,0.00032711265,0.000016727741],"about_ca_topic_score_codex":0.0053516766,"about_ca_topic_score_gemma":0.0036454254,"teacher_disagreement_score":0.0053516766,"about_ca_system_score_codex":0.0009599248,"about_ca_system_score_gemma":0.000853379,"threshold_uncertainty_score":0.010641038},"labels":[],"label_agreement":null},{"id":"W2041665100","doi":"10.1103/physrevb.67.224109","title":"Charged lattice gas with a neutralizing background","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Layered Double Hydroxides Synthesis and Applications","field":"Materials Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"Division of Chemistry; Natural Sciences and Engineering Research Council of Canada; Michigan State University; National Science Foundation","keywords":"Coulomb; Physics; Monte Carlo method; Lattice (music); Hexagonal lattice; Ion; Ground state; Condensed matter physics; Quantum mechanics; Mathematics; Electron; Antiferromagnetism","score_opus":0.02873660849404657,"score_gpt":0.3041746637275163,"score_spread":0.2754380552334697,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2041665100","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8597512,0.0010819918,0.06379781,0.004153672,0.00036045542,0.00013865063,0.00077306124,0.0002991169,0.069643974],"genre_scores_gemma":[0.9753667,0.00036265538,0.009150348,0.000542385,0.00011425429,0.00017404328,0.00046840412,0.000052046737,0.01376914],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996486,0.00011343467,0.000008033269,0.0000394752,0.00008448678,0.000106004736],"domain_scores_gemma":[0.99915624,0.000329019,0.000106019135,0.000059941103,0.00010154326,0.00024715226],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00059755374,0.0008970953,0.0011504074,0.0009917988,0.0014999543,0.002661524,0.001765188,0.002953996,0.0048720227],"category_scores_gemma":[0.0019997738,0.00044501835,0.0006882429,0.0010578113,0.0029321192,0.0015217498,0.0013613759,0.0013658883,0.0005236539],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00029321245,0.00032802025,0.002350291,0.000106036736,0.00006930476,0.00089275156,0.00018060471,0.5716742,0.0028626756,0.4172299,0.0022914698,0.001721583],"study_design_scores_gemma":[0.00016583141,0.00006225953,0.00019365722,0.000011065579,0.00000891197,0.00007769449,0.00007236517,0.9711425,0.00024589204,0.027260268,0.0007349897,0.000024638039],"about_ca_topic_score_codex":0.014133552,"about_ca_topic_score_gemma":0.0061888034,"teacher_disagreement_score":0.014133552,"about_ca_system_score_codex":0.0017746413,"about_ca_system_score_gemma":0.0016623171,"threshold_uncertainty_score":0.028102577},"labels":[],"label_agreement":null},{"id":"W2041802111","doi":"10.1103/physrevb.65.115336","title":"Quenching of the exciton-spin relaxation via exchange interaction in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">GaAs</mml:mi><mml:mo>/</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Al</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">As</mml:mi></mml:math>quantum wells","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada","funders":"","keywords":"Exciton; Relaxation (psychology); Condensed matter physics; Exchange interaction; Quenching (fluorescence); Physics; Spin (aerodynamics); Electron; Quantum mechanics; Thermodynamics","score_opus":0.0147584132034142,"score_gpt":0.24356585191344401,"score_spread":0.22880743871002981,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2041802111","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8771005,0.00070465263,0.032720767,0.0018655321,0.00040623755,0.00006973181,0.0028768135,0.0026479156,0.08160782],"genre_scores_gemma":[0.9277474,0.00045529642,0.0083342325,0.000432742,0.000016425418,0.00008260514,0.0024915922,0.0006868238,0.05975275],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998771,0.0000142526405,0.0000039471934,0.000039518545,0.00003777606,0.00002744655],"domain_scores_gemma":[0.9998472,0.000063204534,0.000024465224,0.000026303185,0.000024680045,0.000014150422],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020837683,0.0002442766,0.00017215838,0.00016183812,0.0004258259,0.00047703806,0.0005494766,0.00037465824,0.024900509],"category_scores_gemma":[0.00047967338,0.00016274184,0.00013394609,0.00022769503,0.0002604319,0.000518823,0.0002541649,0.0010326658,0.0022097225],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00047539096,0.00011802536,0.0005305418,0.0001907173,0.000017317996,0.00021813212,0.00028417713,0.0013058406,0.9555216,0.011510168,0.011433575,0.018394593],"study_design_scores_gemma":[0.000026918033,0.00007865098,0.0017645089,0.0000116892315,0.000008795492,0.000055435383,0.00006457756,0.0061665047,0.977089,0.0005591313,0.014157339,0.000017418515],"about_ca_topic_score_codex":0.0029394398,"about_ca_topic_score_gemma":0.004039021,"teacher_disagreement_score":0.024900509,"about_ca_system_score_codex":0.00084796484,"about_ca_system_score_gemma":0.0003579287,"threshold_uncertainty_score":0.08330047},"labels":[],"label_agreement":null},{"id":"W2042123334","doi":"10.1103/physrevb.61.9895","title":"Diffusion of hydrogen in crystalline silicon","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Silicon and Solar Cell Technologies","field":"Engineering","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"","keywords":"Diffusion; Silicon; Arrhenius equation; Effective diffusion coefficient; Hydrogen; Crystalline silicon; Materials science; Thermodynamics; Chemical physics; Molecular dynamics; Arrhenius plot; Chemistry; Activation energy; Physical chemistry; Computational chemistry; Physics","score_opus":0.008111728291478637,"score_gpt":0.24966997313519246,"score_spread":0.24155824484371383,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2042123334","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9551781,0.0018466163,0.025071971,0.00053664367,0.00007990467,0.000045734578,0.00042476464,0.00017353866,0.016642641],"genre_scores_gemma":[0.99244726,0.0014811094,0.0044756136,0.000050836017,0.000012982056,0.00004458386,0.00023809292,0.000030911626,0.0012186341],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999138,0.000012488178,0.000004144293,0.000012847602,0.000035011806,0.000021657876],"domain_scores_gemma":[0.9997948,0.00011566903,0.000026930567,0.000015315467,0.000029460642,0.000017842065],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002841899,0.00037124442,0.00044969746,0.00063926174,0.000569502,0.0007215972,0.00069862243,0.00065358565,0.001532172],"category_scores_gemma":[0.0006906543,0.00030049114,0.00031322084,0.0007361949,0.000831321,0.0008410336,0.0004238401,0.0004668378,0.0001711172],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015194966,0.00008853227,0.002916667,0.0004155168,0.000092461625,0.00034123217,0.00017224376,0.86191124,0.044276144,0.08003402,0.0010767732,0.008523254],"study_design_scores_gemma":[0.000044823268,0.000042537373,0.0007902057,0.00002214205,0.000016231419,0.000030983716,0.000033598975,0.9844786,0.009511973,0.0042625153,0.0007419602,0.000024477693],"about_ca_topic_score_codex":0.010780998,"about_ca_topic_score_gemma":0.008862931,"teacher_disagreement_score":0.010780998,"about_ca_system_score_codex":0.0015505066,"about_ca_system_score_gemma":0.001063175,"threshold_uncertainty_score":0.021436453},"labels":[],"label_agreement":null},{"id":"W2042333155","doi":"10.1103/physrevb.65.184201","title":"Dynamical properties of liquid Al near melting:  An orbital-free molecular dynamics study","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":99,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Queen's University","keywords":"Pseudopotential; Molecular dynamics; Ab initio; Perturbation theory (quantum mechanics); Kinetic energy; Fragment molecular orbital; Molecular orbital; Neutron scattering; Scattering; Physics; Molecular physics; Materials science; Atomic physics; Classical mechanics; Molecule; Quantum mechanics","score_opus":0.017896152714096995,"score_gpt":0.25176925797404526,"score_spread":0.23387310525994826,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2042333155","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9937231,0.00035615766,0.0034112316,0.000109691515,0.000008961281,0.000011598164,0.00008365097,0.000053116044,0.0022425232],"genre_scores_gemma":[0.99762243,0.00021272845,0.0016615046,0.000010836272,0.000008084413,0.000011418324,0.000083907486,0.000010134769,0.00037902305],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999972,0.0000045880142,0.0000012454288,0.000004616526,0.000010406081,0.0000072840467],"domain_scores_gemma":[0.9999242,0.000028450419,0.00001623138,0.000008089469,0.000012570649,0.000010539955],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000067942055,0.00021872495,0.00027990818,0.00043452528,0.00041195628,0.0004057579,0.00041934516,0.0002706427,0.00079479703],"category_scores_gemma":[0.00025072906,0.00013815459,0.0002258718,0.00040221636,0.0005166368,0.00046971202,0.00021724656,0.00032788582,0.000086311455],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005132996,0.0004179875,0.012193856,0.0003648865,0.0001439692,0.0012909026,0.00067124615,0.5483217,0.35353807,0.059524477,0.0011214252,0.021898119],"study_design_scores_gemma":[0.00002085925,0.000056135246,0.0019826912,0.000005083151,0.000010596884,0.00004820483,0.00003546309,0.9865349,0.009276126,0.0014360828,0.00058358203,0.000010299937],"about_ca_topic_score_codex":0.0032266302,"about_ca_topic_score_gemma":0.0018757517,"teacher_disagreement_score":0.0032266302,"about_ca_system_score_codex":0.00042593596,"about_ca_system_score_gemma":0.0002496216,"threshold_uncertainty_score":0.0064157248},"labels":[],"label_agreement":null},{"id":"W2042376058","doi":"10.1103/physrevb.67.085313","title":"Magnetotransport in a two-dimensional electron gas in the presence of spin-orbit interaction","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":97,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Condensed matter physics; Magnetoresistance; Physics; Magnetic field; Fermi gas; Electrical resistivity and conductivity; Landau quantization; Spin (aerodynamics); Spin–orbit interaction; Electron; Electron localization function; Quantum mechanics","score_opus":0.010157843154853179,"score_gpt":0.3065762427203341,"score_spread":0.29641839956548094,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2042376058","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99445677,0.00025171548,0.0017512455,0.00025333045,0.000018073475,0.000007921466,0.000030408888,0.00003539982,0.0031950814],"genre_scores_gemma":[0.9983089,0.00012810178,0.00089512224,0.00001663881,0.000009943137,0.000010153589,0.000025393885,0.0000063702623,0.0005992795],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998344,0.000053731084,0.000005512609,0.000016430089,0.000034983663,0.000054897064],"domain_scores_gemma":[0.9994541,0.00032579532,0.00006105659,0.000034711782,0.000044102366,0.00008030883],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00055896986,0.0005404431,0.0009124759,0.00051685376,0.00068047363,0.0010972766,0.00050566404,0.0008670159,0.0011500107],"category_scores_gemma":[0.0015899636,0.00033659468,0.00033162718,0.0006220802,0.0017898142,0.001345194,0.00078425027,0.0005620806,0.00008215942],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0023463517,0.00045006617,0.008347044,0.0005992519,0.00019759685,0.0046071615,0.00082046085,0.6228273,0.16826491,0.18574394,0.0010275537,0.0047683483],"study_design_scores_gemma":[0.00014992597,0.00024942175,0.0016924405,0.00001753808,0.000038031096,0.00025269977,0.00013270271,0.97793543,0.008868105,0.010262308,0.00036100953,0.000040425748],"about_ca_topic_score_codex":0.001788713,"about_ca_topic_score_gemma":0.0011251523,"teacher_disagreement_score":0.001788713,"about_ca_system_score_codex":0.000526536,"about_ca_system_score_gemma":0.0004508149,"threshold_uncertainty_score":0.0038471818},"labels":[],"label_agreement":null},{"id":"W2042838162","doi":"10.1103/physrevb.63.041103","title":"Observation of dynamic coupling between the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>Q</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>Q</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>charge-density waves in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">NbSe</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic and Molecular Conductors Research","field":"Materials Science","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Physics; Coupling (piping); Scattering; Charge (physics); Condensed matter physics; Materials science; Optics; Particle physics","score_opus":0.02318472767516772,"score_gpt":0.26636000634900237,"score_spread":0.24317527867383465,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2042838162","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.57404226,0.0022641763,0.097605996,0.010597526,0.001852401,0.00015563838,0.0052564032,0.0061655077,0.30206004],"genre_scores_gemma":[0.974568,0.00027376934,0.006406879,0.000657142,0.00006808156,0.00006419876,0.0008561434,0.0005025413,0.016603112],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996401,0.000025878104,0.000008782936,0.00009168593,0.00014006298,0.00009345648],"domain_scores_gemma":[0.9992285,0.00021379758,0.00011656243,0.00015050071,0.00015311751,0.00013753823],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002629832,0.00033469027,0.00035439007,0.00062952033,0.0007279432,0.0011461223,0.0010133532,0.00087443145,0.034421377],"category_scores_gemma":[0.0015329665,0.00037119605,0.0003301354,0.0007458005,0.0010422182,0.0011822563,0.0011922148,0.003192269,0.0029932957],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013654913,0.0005452958,0.010887098,0.0009812836,0.00017741395,0.004932484,0.0027463883,0.007663208,0.60997576,0.101027854,0.16752703,0.09217071],"study_design_scores_gemma":[0.00032155245,0.00059806893,0.12667532,0.00038068762,0.00013983255,0.003921035,0.0023052236,0.11816447,0.5597703,0.048126493,0.13920493,0.00039208817],"about_ca_topic_score_codex":0.0030677742,"about_ca_topic_score_gemma":0.0028222827,"teacher_disagreement_score":0.034421377,"about_ca_system_score_codex":0.0009004389,"about_ca_system_score_gemma":0.0005941981,"threshold_uncertainty_score":0.11515099},"labels":[],"label_agreement":null},{"id":"W2043133358","doi":"10.1103/physrevb.62.6975","title":"Electron-phonon coupling and Peierls transition in metallic carbon nanotubes","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Peierls transition; Condensed matter physics; Graphene; Phonon; Carbon nanotube; Electron; Symmetry (geometry); Thermal conduction; Materials science; Coupling (piping); Fermi level; Transition metal; Physics; Quantum mechanics; Chemistry; Nanotechnology","score_opus":0.00803646114980392,"score_gpt":0.2753877974781054,"score_spread":0.26735133632830144,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2043133358","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99442095,0.00046591318,0.002435756,0.00012373689,0.000015431875,0.000005491867,0.0000075842427,0.000041036914,0.002484046],"genre_scores_gemma":[0.99850225,0.00021222417,0.0006518721,0.000016246213,0.000006908863,0.000006972725,0.0000071542986,0.000005517416,0.0005908489],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99993217,0.000012191904,0.0000026441273,0.000009971698,0.00002977144,0.000013206574],"domain_scores_gemma":[0.99984753,0.00009068801,0.000026287946,0.00001248304,0.000012732561,0.000010210402],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018846759,0.00021312232,0.00014473934,0.00040568472,0.0004835883,0.00031337497,0.00033242357,0.00054123154,0.0011115787],"category_scores_gemma":[0.00057115644,0.00012183871,0.00016780419,0.0001759926,0.0005546018,0.00041668332,0.0002940592,0.00039138884,0.00012045836],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004014496,0.00021057144,0.0070206113,0.00053519645,0.00006187643,0.0021514264,0.0009099984,0.06533273,0.6955496,0.20949619,0.0007708078,0.017559448],"study_design_scores_gemma":[0.0000866649,0.0006009607,0.02112456,0.000081341655,0.000054961623,0.001386735,0.00044053097,0.26323715,0.4836527,0.22555487,0.0036739707,0.000105547704],"about_ca_topic_score_codex":0.0005243774,"about_ca_topic_score_gemma":0.00065495656,"teacher_disagreement_score":0.0011115787,"about_ca_system_score_codex":0.00035227317,"about_ca_system_score_gemma":0.00013700212,"threshold_uncertainty_score":0.003718555},"labels":[],"label_agreement":null},{"id":"W2043175959","doi":"10.1103/physrevb.66.064103","title":"Universal relaxor polarization in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">Pb</mml:mi><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and related materials","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":68,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Physics; Ferroelectricity; Condensed matter physics; Order (exchange); Crystallography; Dielectric; Quantum mechanics; Chemistry","score_opus":0.01526811081690758,"score_gpt":0.23763811644770802,"score_spread":0.22237000563080045,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2043175959","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0139678,0.0018739599,0.22837931,0.006819366,0.003585215,0.00060130353,0.072345965,0.11709311,0.55533403],"genre_scores_gemma":[0.076612726,0.0041381395,0.16890047,0.006415003,0.00067791,0.002212411,0.11764943,0.09497885,0.528415],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99867946,0.00024931043,0.00008301305,0.00030537558,0.0004709365,0.00021189133],"domain_scores_gemma":[0.9985752,0.00038327326,0.000103972015,0.0004069778,0.0004150358,0.000115474504],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0022671302,0.0023468013,0.0012509724,0.0012891797,0.0022330743,0.0030030936,0.0027804805,0.0022844523,0.4232039],"category_scores_gemma":[0.0038055389,0.0019418113,0.0008676184,0.001912713,0.0007824994,0.0048662554,0.0029296887,0.0038738928,0.21819845],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009015919,0.00009815827,0.00056908693,0.00092463766,0.000056768702,0.0002309133,0.00042368576,0.0007560867,0.06444963,0.024960494,0.84161896,0.06501004],"study_design_scores_gemma":[0.00017021483,0.000087689055,0.00048042423,0.00012574252,0.000034623514,0.00025159743,0.00022149761,0.0022821673,0.09626074,0.003545076,0.89643484,0.00010529945],"about_ca_topic_score_codex":0.004051597,"about_ca_topic_score_gemma":0.0076503432,"teacher_disagreement_score":0.4232039,"about_ca_system_score_codex":0.00154608,"about_ca_system_score_gemma":0.0020819886,"threshold_uncertainty_score":0.82272965},"labels":[],"label_agreement":null},{"id":"W2043314288","doi":"10.1103/physrevb.62.9305","title":"Structure and phase transitions of the 6,6-cyclopropane isomer of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mn>61</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">H</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Division of Materials Research; University of Pennsylvania; University of Waterloo; State University of New York; U.S. Department of Energy; National Science Foundation","keywords":"Crystallography; Orthorhombic crystal system; Cyclopropane; Physics; Lattice (music); Differential scanning calorimetry; Materials science; Octahedron; Phase transition; Crystal structure; Condensed matter physics; Chemistry; Thermodynamics","score_opus":0.012915518746095353,"score_gpt":0.2392445979459041,"score_spread":0.22632907919980877,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2043314288","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98715913,0.00061354885,0.00079106924,0.00013348288,0.000026249818,0.0000094648885,0.00064506906,0.000041934694,0.010580015],"genre_scores_gemma":[0.99408865,0.00026233564,0.00067204563,0.00003626581,0.000006147008,0.000014191687,0.00096399663,0.000020942096,0.003935477],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99995804,0.000003180488,0.0000015638831,0.000010223047,0.000014359862,0.000012751407],"domain_scores_gemma":[0.99995375,0.000009411605,0.000012892535,0.0000042150673,0.000012061989,0.000007652106],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000048899125,0.00013277504,0.00005801189,0.0001733042,0.00020516939,0.00016509126,0.0002461446,0.00014671976,0.0072166207],"category_scores_gemma":[0.00014429358,0.00011331625,0.000074464784,0.00020586897,0.00017899844,0.00017642473,0.00008458183,0.00032132593,0.00046588184],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00063140586,0.00014544309,0.0017776293,0.0002341326,0.000019972704,0.00025314323,0.00024535952,0.0049309935,0.9704709,0.00858786,0.0028630854,0.009839905],"study_design_scores_gemma":[0.00004973519,0.0004016833,0.007810112,0.000020703352,0.000010714955,0.00009036878,0.00012186582,0.012446915,0.9676046,0.0006952962,0.010724541,0.000023469973],"about_ca_topic_score_codex":0.0027444335,"about_ca_topic_score_gemma":0.002774342,"teacher_disagreement_score":0.0072166207,"about_ca_system_score_codex":0.0003301631,"about_ca_system_score_gemma":0.00022656654,"threshold_uncertainty_score":0.024142027},"labels":[],"label_agreement":null},{"id":"W2044265855","doi":"10.1103/physrevb.67.224405","title":"Effect of ring exchange on an orbital antiferromagnet","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Antiferromagnetism; Ring (chemistry); Physics; Condensed matter physics; Exchange interaction; Chemistry; Ferromagnetism","score_opus":0.012701347392065616,"score_gpt":0.30633570405371346,"score_spread":0.29363435666164783,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2044265855","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9940586,0.00022256203,0.0014956343,0.00014056731,0.000025153946,0.00000748075,0.0000109495595,0.0000538728,0.003985235],"genre_scores_gemma":[0.99911636,0.00008133245,0.00043702527,0.000016280315,0.000010145156,0.0000044260373,0.0000066081484,0.0000068114277,0.00032099636],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99988437,0.00004080924,0.000004437122,0.000013933857,0.000024105342,0.000032400898],"domain_scores_gemma":[0.99930584,0.00034877268,0.0001308716,0.00008215527,0.000038341124,0.000093941184],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003894264,0.00025650728,0.0005572644,0.0004338845,0.0008426431,0.0006572765,0.0004972111,0.00039489247,0.002825433],"category_scores_gemma":[0.0011742902,0.00013296913,0.00034418333,0.00029319696,0.0007644293,0.0007263463,0.0006178289,0.000368437,0.00013042596],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0029902675,0.0011627839,0.009191039,0.00090603234,0.00033695108,0.0043172496,0.0011840804,0.18817705,0.36388212,0.4012847,0.002669807,0.023897953],"study_design_scores_gemma":[0.00048225562,0.0016621485,0.006651714,0.000049055896,0.00028744858,0.00079526287,0.00039267197,0.76109964,0.16057268,0.0656162,0.002278113,0.000112848524],"about_ca_topic_score_codex":0.0005420297,"about_ca_topic_score_gemma":0.00064479944,"teacher_disagreement_score":0.002825433,"about_ca_system_score_codex":0.0002899117,"about_ca_system_score_gemma":0.00023165616,"threshold_uncertainty_score":0.009452045},"labels":[],"label_agreement":null},{"id":"W2044973325","doi":"10.1103/physrevb.66.012508","title":"Far-infrared electrodynamic response of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">TMTSF</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mo>)</mml:mo></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">ClO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>in the normal and superconducting states","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic and Molecular Conductors Research","field":"Materials Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brock University","funders":"","keywords":"Superconductivity; Physics; Ion; Phonon; Infrared; Condensed matter physics; Materials science; Atomic physics; Optics; Quantum mechanics","score_opus":0.019044180890450676,"score_gpt":0.25862442394998875,"score_spread":0.23958024305953807,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2044973325","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9773326,0.0005364459,0.0020043089,0.00034622126,0.00008243852,0.000008956262,0.00040953836,0.0002680869,0.019011365],"genre_scores_gemma":[0.98346114,0.0003761677,0.0010709125,0.000062084044,0.000016657586,0.0000117599775,0.0004615259,0.00012116773,0.01441858],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997998,0.0000176499,0.0000040015484,0.00004531065,0.00007548834,0.00005778973],"domain_scores_gemma":[0.99978286,0.00007203211,0.000038070928,0.000018094755,0.000069449816,0.000019553123],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002099958,0.00041306362,0.00027500239,0.0003054325,0.0005459111,0.0004554053,0.00052581634,0.0004340246,0.010463535],"category_scores_gemma":[0.00048484493,0.00023142257,0.00014047502,0.00033562025,0.00058608124,0.0005115209,0.00023405123,0.00079790945,0.001310008],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00053139584,0.00009024825,0.0012468402,0.00015149282,0.000025591025,0.00022176364,0.0004552163,0.0008148381,0.9804134,0.003007029,0.0042284513,0.008813669],"study_design_scores_gemma":[0.000023558569,0.00023991178,0.008422592,0.000016550883,0.000015144076,0.00012907018,0.00025030194,0.005523626,0.97884583,0.00022690273,0.00627504,0.000031438445],"about_ca_topic_score_codex":0.001997051,"about_ca_topic_score_gemma":0.0025177726,"teacher_disagreement_score":0.010463535,"about_ca_system_score_codex":0.00065066956,"about_ca_system_score_gemma":0.0002057944,"threshold_uncertainty_score":0.03500402},"labels":[],"label_agreement":null},{"id":"W2045593685","doi":"10.1103/physrevb.62.2669","title":"Photoconductivity in CdSe quantum dot solids","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum Dots Synthesis And Properties","field":"Materials Science","cited_by":293,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Materials Research Science and Engineering Center, Harvard University; National Science Foundation","keywords":"Quantum dot; Photoconductivity; Quantum tunnelling; Electric field; Materials science; Exciton; Condensed matter physics; Photoluminescence; Electron; Quenching (fluorescence); Atomic physics; Optoelectronics; Physics; Fluorescence; Optics","score_opus":0.02742554857104783,"score_gpt":0.3077005417736983,"score_spread":0.2802749932026505,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2045593685","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99805224,0.00036353178,0.001136982,0.000021310392,0.0000035054488,0.000008160041,0.00004623891,0.000027247936,0.00034081837],"genre_scores_gemma":[0.9991636,0.00012239415,0.00044247045,0.000008959103,0.0000017722294,0.000007879125,0.00004541866,0.0000054267516,0.00020200563],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99978095,0.000022759505,0.000012935897,0.00006990232,0.00008986402,0.000023507511],"domain_scores_gemma":[0.99965453,0.00015114021,0.00006833642,0.000031241878,0.000067330875,0.000027441434],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001655754,0.00019734641,0.00023361738,0.0002471902,0.00028991888,0.0004595367,0.00028899495,0.00027249343,0.0006216952],"category_scores_gemma":[0.00068039674,0.00015294236,0.00014787569,0.00020586642,0.00061873964,0.00035777298,0.00029230773,0.0004625621,0.0001247912],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000039369854,0.000012438669,0.0010259834,0.00003642002,0.000008850723,0.000050303977,0.00008408567,0.0002716341,0.99722517,0.00014605497,0.00001173236,0.001087984],"study_design_scores_gemma":[0.000008337255,0.0001060237,0.003808714,0.000003966355,0.000008174524,0.00012852208,0.000031402837,0.002090263,0.9935133,0.00010605454,0.00018905978,0.0000062002964],"about_ca_topic_score_codex":0.0015261816,"about_ca_topic_score_gemma":0.0011398434,"teacher_disagreement_score":0.0015261816,"about_ca_system_score_codex":0.0005941078,"about_ca_system_score_gemma":0.00012281188,"threshold_uncertainty_score":0.004310608},"labels":[],"label_agreement":null},{"id":"W2045730250","doi":"10.1103/physrevb.66.115414","title":"Morphology of the rutile (110) surface after low sputter dose and annealing","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"nanoparticles nucleation surface interactions","field":"Earth and Planetary Sciences","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Annealing (glass); Rutile; Materials science; Sputtering; Argon; Low-energy electron diffraction; Surface diffusion; Ion; Electron diffraction; Condensed matter physics; Analytical Chemistry (journal); Crystallography; Physics; Atomic physics; Diffraction; Optics; Thin film; Chemistry; Nanotechnology; Adsorption","score_opus":0.014717989688136228,"score_gpt":0.2522322824020039,"score_spread":0.23751429271386768,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2045730250","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9977756,0.00020485795,0.0005340272,0.000019576251,0.0000053816166,0.0000035035282,0.0001358641,0.000048225484,0.0012728923],"genre_scores_gemma":[0.9976399,0.00012843391,0.0006162291,0.00001119341,0.0000025328402,0.0000058056357,0.00020590454,0.000020487063,0.0013695724],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99994946,0.0000035506835,0.0000022216154,0.000010438996,0.00002009335,0.000014171615],"domain_scores_gemma":[0.9999069,0.000028508457,0.000016516604,0.000013739339,0.000020902631,0.0000134411775],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000052286112,0.00009584141,0.00017420997,0.00019262749,0.000107487955,0.00022169543,0.00016702042,0.00017473684,0.001678065],"category_scores_gemma":[0.00018977912,0.00012672048,0.00011480357,0.00017010792,0.00016895213,0.00009957865,0.000087611625,0.0001676868,0.00021674091],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012415175,0.000012066071,0.0014043223,0.000041983592,0.000008924768,0.0001713013,0.00009555854,0.00036698612,0.9950971,0.00009730983,0.000091571266,0.0024886145],"study_design_scores_gemma":[0.000017693046,0.00036530127,0.08236504,0.0000081801,0.000026211568,0.000527749,0.00017877796,0.0042810114,0.91017884,0.00009131939,0.0019409637,0.000018850573],"about_ca_topic_score_codex":0.0016238698,"about_ca_topic_score_gemma":0.0019043647,"teacher_disagreement_score":0.001678065,"about_ca_system_score_codex":0.00020013096,"about_ca_system_score_gemma":0.00006866969,"threshold_uncertainty_score":0.0056137443},"labels":[],"label_agreement":null},{"id":"W2046041033","doi":"10.1103/physrevb.67.073105","title":"Sound propagation in a nematic Fermi liquid","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Liquid crystal; Sound (geography); Sound propagation; Second sound; Fermi Gamma-ray Space Telescope; Condensed matter physics; Acoustics; Fermi liquid theory; Physics; Materials science; Superconductivity","score_opus":0.016773994850808164,"score_gpt":0.2999166835133165,"score_spread":0.28314268866250836,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2046041033","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96151733,0.0020920315,0.014425166,0.0007315507,0.00013690242,0.000032035794,0.000064410284,0.00017905932,0.020821543],"genre_scores_gemma":[0.99031454,0.0010204382,0.004282814,0.00010599575,0.00007170383,0.000028651526,0.00007490899,0.00003387908,0.004067115],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999099,0.00001702201,0.0000029245855,0.000010994994,0.000027849443,0.000031176158],"domain_scores_gemma":[0.9998087,0.00007809444,0.0000478352,0.00000937856,0.000032629698,0.000023413857],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016852254,0.00035686092,0.00036347815,0.00061573705,0.0009114132,0.0016783614,0.00037017197,0.0006949198,0.0012251682],"category_scores_gemma":[0.0006436304,0.00018114844,0.00016917007,0.00056292635,0.0014888119,0.00089133147,0.0006520371,0.000637845,0.00026040286],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009011463,0.0006383266,0.0057808775,0.0006577061,0.00007171278,0.0030851255,0.0016860784,0.11310131,0.4049002,0.42996767,0.0048390618,0.034370776],"study_design_scores_gemma":[0.00033770254,0.00045529648,0.0022835785,0.00009388748,0.000066755296,0.0006102408,0.00055415044,0.85422385,0.060609736,0.075353734,0.005302069,0.00010898754],"about_ca_topic_score_codex":0.002714207,"about_ca_topic_score_gemma":0.0014069866,"teacher_disagreement_score":0.002714207,"about_ca_system_score_codex":0.00048007845,"about_ca_system_score_gemma":0.00045175373,"threshold_uncertainty_score":0.005396843},"labels":[],"label_agreement":null},{"id":"W2046378114","doi":"10.1103/physrevb.67.155210","title":"Acceptor identification using magnetophotoluminescence of bound exciton states in InSb","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Excited state; Acceptor; Exciton; Binding energy; Photoluminescence; Zeeman effect; Luminescence; Atomic physics; Physics; Indium antimonide; Bound state; Materials science; Magnetic field; Condensed matter physics; Optoelectronics","score_opus":0.017403860938478868,"score_gpt":0.3218903661835397,"score_spread":0.3044865052450609,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2046378114","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99735993,0.00007624179,0.001538627,0.000022743312,0.000003266473,0.000002842929,0.00010823987,0.000025430645,0.0008628441],"genre_scores_gemma":[0.99664587,0.00009503052,0.0021618935,0.000011188134,0.0000018978598,0.000008680864,0.00016744816,0.000018814919,0.0008891643],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991465,0.000008889781,0.000003200974,0.00003103291,0.000023707371,0.00001846911],"domain_scores_gemma":[0.9999114,0.000019875966,0.000017600634,0.000011758233,0.000019249646,0.000020049325],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014773037,0.0002597507,0.00019054681,0.00038632037,0.00052622723,0.0006057226,0.0003688373,0.00030374387,0.0013734591],"category_scores_gemma":[0.00020656266,0.00026871872,0.00010011287,0.00027292923,0.00032293674,0.00030162287,0.00027772973,0.00032973438,0.0003027632],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009584125,0.000010532222,0.0009011842,0.000014469355,0.0000023446594,0.000028659708,0.000044331868,0.00010218072,0.99783933,0.00019634653,0.000019522407,0.000745133],"study_design_scores_gemma":[0.000015687701,0.00007440083,0.010732394,0.000008808407,0.000010613058,0.0000840115,0.00009108724,0.004167721,0.9839887,0.00020942383,0.00060575164,0.000011474664],"about_ca_topic_score_codex":0.0025238334,"about_ca_topic_score_gemma":0.0060779485,"teacher_disagreement_score":0.0025238334,"about_ca_system_score_codex":0.00060452963,"about_ca_system_score_gemma":0.00022268562,"threshold_uncertainty_score":0.005018294},"labels":[],"label_agreement":null},{"id":"W2048152765","doi":"10.1103/physrevb.64.184503","title":"Superconducting zero-temperature phase transition in two dimensions and in a magnetic field","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Condensed matter physics; Superconductivity; Quantum phase transition; Magnetic field; Phase transition; Physics; Lattice (music); Quantum critical point; Ginzburg–Landau theory; Quantum mechanics","score_opus":0.01395663350489278,"score_gpt":0.32190929501591986,"score_spread":0.30795266151102707,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2048152765","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.95855325,0.0011440677,0.018510751,0.0004990836,0.00009934454,0.000042895317,0.00007630584,0.00008018258,0.020994179],"genre_scores_gemma":[0.9924079,0.00024368669,0.0058163092,0.0000396922,0.000025166912,0.000020094609,0.000030483636,0.000006293504,0.0014102672],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999362,0.00001846173,0.000004127512,0.000006399068,0.000021129848,0.000013664683],"domain_scores_gemma":[0.9998859,0.000035714434,0.000029072231,0.000015272595,0.000020873827,0.0000130935],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020859193,0.00020004742,0.00029098973,0.0005171137,0.00042861092,0.000549514,0.00028869038,0.00036379325,0.0010535602],"category_scores_gemma":[0.00068580895,0.00013608382,0.00020765945,0.00025691016,0.0008014059,0.00060954224,0.0004929827,0.00037949072,0.00011290197],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008274489,0.0000982587,0.0012849361,0.0001796766,0.00002094392,0.0005499042,0.00036166373,0.014943651,0.03731484,0.93858343,0.0010361519,0.005543869],"study_design_scores_gemma":[0.00012187003,0.00026976052,0.0029089786,0.000048061287,0.000025383513,0.0005321544,0.00019981206,0.20165272,0.017483395,0.7728019,0.003920806,0.000035306475],"about_ca_topic_score_codex":0.00050194707,"about_ca_topic_score_gemma":0.00090528,"teacher_disagreement_score":0.0010535602,"about_ca_system_score_codex":0.00032050506,"about_ca_system_score_gemma":0.00021573437,"threshold_uncertainty_score":0.0035245419},"labels":[],"label_agreement":null},{"id":"W2048192167","doi":"10.1103/physrevb.64.115111","title":"Optical properties of copper and silver in the energy range 2.5–9.0 eV","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Surface and Thin Film Phenomena","field":"Physics and Astronomy","cited_by":126,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Materials science; Dielectric; Quasiparticle; Copper; Condensed matter physics; Surface roughness; Valence (chemistry); Band gap; Ellipsometry; Electronic band structure; Range (aeronautics); Molecular physics; Atomic physics; Thin film; Physics; Nanotechnology; Optoelectronics","score_opus":0.018809859485737122,"score_gpt":0.26380506604592446,"score_spread":0.24499520656018733,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2048192167","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9946424,0.00077936717,0.0007105612,0.000035163102,0.00001053989,0.0000042014362,0.00013604821,0.0000567327,0.0036250076],"genre_scores_gemma":[0.9976749,0.00016533864,0.0007965672,0.000012069556,0.000004839644,0.000005774789,0.00021156052,0.000011925916,0.001117008],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99984086,0.000014265913,0.0000048706943,0.00002766878,0.00008366914,0.000028571756],"domain_scores_gemma":[0.9997801,0.000063554544,0.000044731605,0.000015427635,0.00008060224,0.000015708201],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015569794,0.00022187288,0.00021926094,0.0007308832,0.00018504092,0.00025812304,0.00032230373,0.00029768585,0.0010079603],"category_scores_gemma":[0.0004799608,0.00014773982,0.00013609666,0.00047581166,0.0002141857,0.00016293624,0.0001705004,0.00018758766,0.00019435895],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005984253,0.00006712747,0.005096902,0.00031506285,0.00004199516,0.00031596975,0.00013523173,0.0026237452,0.9793022,0.0012569542,0.00092393585,0.009322443],"study_design_scores_gemma":[0.00005755972,0.0006695297,0.039013557,0.000029054409,0.00004628853,0.00077888666,0.00017961692,0.02012096,0.9337006,0.0006556238,0.004716095,0.00003220916],"about_ca_topic_score_codex":0.0013339111,"about_ca_topic_score_gemma":0.0009263363,"teacher_disagreement_score":0.0013339111,"about_ca_system_score_codex":0.00033022638,"about_ca_system_score_gemma":0.000100293946,"threshold_uncertainty_score":0.0033720136},"labels":[],"label_agreement":null},{"id":"W2049332872","doi":"10.1103/physrevb.68.195407","title":"Relaxation kinetics in two-dimensional structures","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"nanoparticles nucleation surface interactions","field":"Earth and Planetary Sciences","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"Natural Sciences and Engineering Research Council of Canada; Fonds Québécois de la Recherche sur la Nature et les Technologies","keywords":"Relaxation (psychology); Kinetics; Materials science; Chemical physics; Statistical physics; Physics; Psychology; Classical mechanics; Social psychology","score_opus":0.01613034083041349,"score_gpt":0.30395598331016405,"score_spread":0.28782564247975057,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2049332872","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.94167113,0.00091166055,0.05011779,0.00043193766,0.00004377147,0.000030051724,0.000059721795,0.00009680298,0.0066371793],"genre_scores_gemma":[0.99202955,0.00029515356,0.005763512,0.00004131751,0.0000073325723,0.000023062656,0.000063597014,0.000015616752,0.0017608523],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99988794,0.000019485273,0.000005270025,0.000026388076,0.000025015699,0.000035911064],"domain_scores_gemma":[0.99963117,0.00018897653,0.000050832277,0.000041336283,0.000041235253,0.00004633026],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028604927,0.00020062772,0.0003931007,0.00031949708,0.0005314844,0.0007210517,0.00064385403,0.00071802124,0.001351776],"category_scores_gemma":[0.0015775806,0.00033736875,0.00038370615,0.00027999465,0.0009730954,0.0014355076,0.0006570353,0.0008526528,0.00013347423],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002218473,0.0001806137,0.0038309062,0.00026649033,0.00007535686,0.00063062203,0.0010432418,0.6228987,0.11237533,0.24621567,0.0006111306,0.011650072],"study_design_scores_gemma":[0.00007561497,0.00010262237,0.0015344864,0.000013480885,0.000017222692,0.00017214919,0.00008683555,0.9439928,0.014189826,0.038031787,0.0017383309,0.000044757635],"about_ca_topic_score_codex":0.0031564913,"about_ca_topic_score_gemma":0.0017933513,"teacher_disagreement_score":0.0031564913,"about_ca_system_score_codex":0.0006904763,"about_ca_system_score_gemma":0.00031909984,"threshold_uncertainty_score":0.00627625},"labels":[],"label_agreement":null},{"id":"W2050265167","doi":"10.1103/physrevb.66.073310","title":"Effect of magnetic field on excitons in bulk and heterostructure semiconductors containing disorder","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University","funders":"","keywords":"Exciton; Condensed matter physics; Heterojunction; Electron; Magnetic field; Semiconductor; Materials science; Quantum well; Magnetic semiconductor; Fermi gas; Lattice (music); Biexciton; Physics; Optoelectronics; Optics","score_opus":0.007630511749479042,"score_gpt":0.2808686630023582,"score_spread":0.27323815125287915,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2050265167","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9840514,0.003445718,0.0048076264,0.00021043865,0.0000634005,0.000020670885,0.00004817014,0.000106276166,0.007246351],"genre_scores_gemma":[0.9973767,0.000896192,0.000812196,0.00001669701,0.000025097283,0.000007250302,0.000021007114,0.000008928814,0.0008359086],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999455,0.000017379261,0.0000012684025,0.0000058398173,0.000019157887,0.0000107040105],"domain_scores_gemma":[0.9997011,0.00020793513,0.000037437192,0.000009343897,0.000020286036,0.000023928747],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014407125,0.0002220788,0.00022568755,0.00033401386,0.0003283444,0.0003390494,0.00018308619,0.00018223937,0.0007918514],"category_scores_gemma":[0.0004724012,0.00010716833,0.000102958686,0.00016715234,0.00036946122,0.00027926738,0.00021444849,0.00016266303,0.000096178504],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0023859425,0.00049329764,0.008179942,0.0010045595,0.00014094329,0.0021055548,0.00046228114,0.13944227,0.7131667,0.07442506,0.002581117,0.05561226],"study_design_scores_gemma":[0.00033381121,0.0016447868,0.014123711,0.00008034469,0.00013700107,0.0010067765,0.00028512307,0.66014034,0.2825088,0.032714557,0.0069358884,0.00008892973],"about_ca_topic_score_codex":0.0005240781,"about_ca_topic_score_gemma":0.0005620083,"teacher_disagreement_score":0.0007918514,"about_ca_system_score_codex":0.00041763714,"about_ca_system_score_gemma":0.000118002885,"threshold_uncertainty_score":0.003030181},"labels":[],"label_agreement":null},{"id":"W2050893368","doi":"10.1103/physrevb.65.155315","title":"Kinetic roughening of GaAs(001) during thermal<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cl</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>etching","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Nabla symbol; Surface roughness; Physics; Scattering; Surface (topology); Materials science; Crystallography; Condensed matter physics; Analytical Chemistry (journal); Geometry; Optics; Thermodynamics; Chemistry; Quantum mechanics; Omega; Mathematics","score_opus":0.013655573046011399,"score_gpt":0.24142825991653277,"score_spread":0.22777268687052138,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2050893368","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99552405,0.00029372043,0.00068998575,0.00006728886,0.000021573738,0.000008491823,0.0003993674,0.000082613406,0.0029128883],"genre_scores_gemma":[0.99729794,0.00023177786,0.0005787151,0.000014929259,0.0000037505831,0.000007847271,0.00025969278,0.000026641655,0.0015786594],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99991226,0.0000042309134,0.0000028950224,0.00001893211,0.000028341405,0.00003332133],"domain_scores_gemma":[0.9998764,0.00005765845,0.000025830883,0.000012340883,0.000014591901,0.000013180547],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011852118,0.00023054893,0.00029330768,0.00016973834,0.0003633619,0.00067610666,0.0003511325,0.00030886944,0.0035568634],"category_scores_gemma":[0.00034519084,0.00028389745,0.0002722945,0.00025635032,0.00028939283,0.00041586664,0.00016643935,0.00036992432,0.000439726],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00072332093,0.00015408898,0.0035259833,0.0004399653,0.00008103534,0.00057551917,0.00051880424,0.04882868,0.92772025,0.005052827,0.0014286547,0.010950825],"study_design_scores_gemma":[0.000101617654,0.00069388654,0.02395658,0.00003102132,0.000058093025,0.000279847,0.00038807327,0.17486668,0.79395443,0.0011043109,0.004467354,0.00009813138],"about_ca_topic_score_codex":0.005966284,"about_ca_topic_score_gemma":0.0076848543,"teacher_disagreement_score":0.005966284,"about_ca_system_score_codex":0.0007660559,"about_ca_system_score_gemma":0.00031311126,"threshold_uncertainty_score":0.011898935},"labels":[],"label_agreement":null},{"id":"W2051383771","doi":"10.1103/physrevb.61.5827","title":"Anharmonicity-induced glasslike transition in a plastic crystal without α relaxation","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Solid-state spectroscopy and crystallography","field":"Materials Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Anharmonicity; Relaxation (psychology); Vacancy defect; Condensed matter physics; Diffusion; Materials science; Crystal (programming language); Physics; Arrhenius equation; Neutron diffraction; Crystallography; Activation energy; Diffraction; Thermodynamics; Physical chemistry; Chemistry; Optics","score_opus":0.010634539950052794,"score_gpt":0.2901844323365943,"score_spread":0.2795498923865415,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2051383771","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99755484,0.00005438538,0.0010819553,0.000032993383,0.0000091758,0.000005465614,0.00003303236,0.000029684603,0.0011985557],"genre_scores_gemma":[0.9990013,0.00003066554,0.00043140285,0.000015004415,0.0000024957183,0.0000060088646,0.000031481497,0.000007766539,0.00047384106],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999633,0.0000031403044,0.0000016223172,0.000010503511,0.000008665566,0.0000127552685],"domain_scores_gemma":[0.99993205,0.000013789015,0.000022607588,0.000008604227,0.0000066421258,0.00001623284],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00004621158,0.00009716664,0.000085293614,0.00011444845,0.00023873236,0.00025312428,0.00019941648,0.000109715016,0.000962648],"category_scores_gemma":[0.00013877977,0.00016241288,0.0000874161,0.00009733086,0.0003564529,0.00019516918,0.00016625726,0.00029939902,0.00011359668],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014850414,0.000051267463,0.0012122567,0.000055165434,0.000007751088,0.00019458144,0.00010728452,0.0012599664,0.99094886,0.0031883353,0.00016723304,0.0026587953],"study_design_scores_gemma":[0.00008561516,0.0004647592,0.012100457,0.000012044422,0.00001986856,0.00033645012,0.00014505911,0.042279474,0.940358,0.0019274271,0.0022374578,0.00003334266],"about_ca_topic_score_codex":0.0013156239,"about_ca_topic_score_gemma":0.0016661753,"teacher_disagreement_score":0.0013156239,"about_ca_system_score_codex":0.0002246403,"about_ca_system_score_gemma":0.0002170952,"threshold_uncertainty_score":0.0032203794},"labels":[],"label_agreement":null},{"id":"W2052002489","doi":"10.1103/physrevb.62.3232","title":"Inclusion of higher order anharmonic contributions in self-consistent phonon theory","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brock University","funders":"","keywords":"Ansatz; Physics; Anharmonicity; Phonon; Monte Carlo method; Order (exchange); Lambda; Self consistent; Quantum mechanics; Mathematical physics; Diagram; Statistical physics; Quantum electrodynamics; Mathematics; Statistics","score_opus":0.007008247362835306,"score_gpt":0.2864510309098065,"score_spread":0.2794427835469712,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2052002489","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.20999563,0.0007969014,0.76163644,0.00067235006,0.00046123055,0.00009247256,0.00007511258,0.0003969885,0.02587291],"genre_scores_gemma":[0.7947608,0.0010572663,0.19041201,0.00022299054,0.00016474562,0.00027200353,0.000092358765,0.00032236712,0.012695493],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99930394,0.00026314793,0.000031241645,0.000033726807,0.0003151388,0.00005289824],"domain_scores_gemma":[0.99898463,0.0003703923,0.000069442955,0.00033213024,0.00016967177,0.00007364012],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0015348734,0.00033632488,0.0008864411,0.00093957584,0.0009851523,0.0010999433,0.002138327,0.0010234334,0.0013885247],"category_scores_gemma":[0.0025792453,0.00039218346,0.00072833593,0.0008454996,0.0014818079,0.001648961,0.0011233354,0.001409918,0.0005046076],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00002129052,0.0000531397,0.00032547885,0.000058817594,0.000020597377,0.00016556117,0.000094135925,0.1451172,0.002691695,0.84104055,0.0004738271,0.009937788],"study_design_scores_gemma":[0.000009724885,0.0000124650005,0.000094232964,0.0000090818085,0.0000059443796,0.000028207407,0.000012171606,0.8761134,0.0005769728,0.12241038,0.0007159379,0.000011480756],"about_ca_topic_score_codex":0.002126951,"about_ca_topic_score_gemma":0.0034595286,"teacher_disagreement_score":0.002138327,"about_ca_system_score_codex":0.00067559944,"about_ca_system_score_gemma":0.0011391172,"threshold_uncertainty_score":0.008117318},"labels":[],"label_agreement":null},{"id":"W2052989523","doi":"10.1103/physrevb.61.r6491","title":"Elastic study of antiferromagnetic fluctuations in the layered organic superconductors<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>κ</mml:mi><mml:mo>−</mml:mo><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">BEDT</mml:mi><mml:mo>−</mml:mo><mml:mi mathvariant=\"normal\">TTF</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mo>)</mml:mo></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi>X</mml:mi></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic and Molecular Conductors Research","field":"Materials Science","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Superconductivity; Antiferromagnetism; Condensed matter physics; Softening; Hydrostatic pressure; Hydrostatic equilibrium; Materials science; Physics; Thermodynamics; Composite material","score_opus":0.020616267266482143,"score_gpt":0.26523781852464184,"score_spread":0.2446215512581597,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2052989523","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.998782,0.00006192251,0.0004492324,0.000019310854,0.0000038383987,0.0000013522707,0.000028026396,0.000007708568,0.0006467574],"genre_scores_gemma":[0.99909484,0.000041771375,0.00020836746,0.0000042053025,0.0000024191272,0.0000019685453,0.000030730185,0.0000033339124,0.00061232265],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999505,0.0000045691318,0.0000018978599,0.000008512061,0.000018373115,0.000016161513],"domain_scores_gemma":[0.9998909,0.000031682397,0.000034389148,0.000010390057,0.000020113184,0.00001243489],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000083552506,0.00010789903,0.000088905515,0.000203015,0.0002528013,0.00022445939,0.00016388687,0.00010705292,0.0015023035],"category_scores_gemma":[0.00022877897,0.00010915496,0.00008823121,0.00021179528,0.00035732012,0.00021639503,0.00015769755,0.00023813518,0.00011456123],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028125793,0.000046804806,0.003469313,0.00007622069,0.000027078393,0.0002512697,0.0003567311,0.003984556,0.98303545,0.004675857,0.00021863819,0.0035768033],"study_design_scores_gemma":[0.000038121056,0.00031284598,0.04957334,0.00001823022,0.000037240436,0.000166702,0.00053495436,0.06747486,0.87943035,0.0005736656,0.0017923178,0.000047364214],"about_ca_topic_score_codex":0.0023053158,"about_ca_topic_score_gemma":0.0024645997,"teacher_disagreement_score":0.0023053158,"about_ca_system_score_codex":0.00021156539,"about_ca_system_score_gemma":0.0001355854,"threshold_uncertainty_score":0.005025685},"labels":[],"label_agreement":null},{"id":"W2053227363","doi":"10.1103/physrevb.66.233402","title":"Noncoaxial resonance of an isolated multiwall carbon nanotube","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":168,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Carbon nanotube; Resonance (particle physics); Excited state; Molecular vibration; Atomic physics; Vibration; Materials science; Carbon fibers; Molecular physics; Chemical physics; Physics; Nanotechnology; Optics; Quantum mechanics; Composite material; Raman spectroscopy","score_opus":0.015329438300387377,"score_gpt":0.2862021975548476,"score_spread":0.27087275925446025,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2053227363","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97123474,0.0009933687,0.019744627,0.000061987565,0.00006531651,0.000022392014,0.000024749419,0.00006161332,0.007791191],"genre_scores_gemma":[0.9942338,0.00033405094,0.004066348,0.000020897187,0.0000119005235,0.000010825181,0.000032493776,0.00001613041,0.0012735799],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998865,0.000009300994,0.0000026025336,0.000029134058,0.000056030316,0.000016354827],"domain_scores_gemma":[0.99984944,0.00007444682,0.000029311419,0.00001664311,0.000018484596,0.000011669389],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000119941775,0.0002933144,0.00028507865,0.0001776572,0.00032613653,0.00023117603,0.000404329,0.00041135232,0.0014858143],"category_scores_gemma":[0.00026157685,0.00013481782,0.00020931833,0.00011078514,0.00044395382,0.00045873513,0.00020445252,0.00031384255,0.00033148556],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015263366,0.00005530382,0.0007387283,0.0003820173,0.000025822697,0.00051351066,0.00017146193,0.022039546,0.95997256,0.007406125,0.0001885914,0.008353583],"study_design_scores_gemma":[0.000027097094,0.00083590834,0.0040111775,0.00003746899,0.000041959916,0.0007042015,0.00020803236,0.32656652,0.66086054,0.0029740056,0.00367843,0.000054743537],"about_ca_topic_score_codex":0.00027653124,"about_ca_topic_score_gemma":0.0004570749,"teacher_disagreement_score":0.0014858143,"about_ca_system_score_codex":0.00016570554,"about_ca_system_score_gemma":0.00010765074,"threshold_uncertainty_score":0.0049705505},"labels":[],"label_agreement":null},{"id":"W2053947226","doi":"10.1103/physrevb.66.113304","title":"Hysteretic contact potential changes in nanometallic tunnel junctions in air","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Force Microscopy Techniques and Applications","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Materials science; Hysteresis; Nanotechnology; Engineering physics; Condensed matter physics; Physics","score_opus":0.012113900501044512,"score_gpt":0.2843958822775396,"score_spread":0.2722819817764951,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2053947226","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9986817,0.00021581068,0.0005556629,0.00001709876,0.0000059966446,0.0000048176903,0.00005335035,0.000022844082,0.00044262983],"genre_scores_gemma":[0.9991928,0.00009213688,0.00040157436,0.000006726368,0.000002814947,0.0000033396173,0.00003632743,0.0000035299133,0.0002606869],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999087,0.000008188859,0.0000050992726,0.000017016504,0.000040601884,0.000020382506],"domain_scores_gemma":[0.999783,0.0000792101,0.000050771294,0.000020990068,0.000039667855,0.000026419499],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010057781,0.00013803712,0.00013853279,0.00017392979,0.0002183251,0.0002507898,0.0002055473,0.00017201646,0.0007776483],"category_scores_gemma":[0.00037323,0.00009356255,0.00007393404,0.00016289554,0.00030762047,0.00035338805,0.00018368893,0.00024877337,0.00010012853],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000057114637,0.000015572827,0.001139409,0.000037437727,0.000004612785,0.00020135302,0.00011782175,0.00023535523,0.99564505,0.00013783904,0.000028778893,0.002379637],"study_design_scores_gemma":[0.0000151115755,0.0003107602,0.025546309,0.000007647554,0.0000118045955,0.000406231,0.0001913461,0.0047463356,0.9674984,0.00025033753,0.000998844,0.000016924452],"about_ca_topic_score_codex":0.0004739128,"about_ca_topic_score_gemma":0.0006577574,"teacher_disagreement_score":0.0007776483,"about_ca_system_score_codex":0.00017219745,"about_ca_system_score_gemma":0.00005995118,"threshold_uncertainty_score":0.002601564},"labels":[],"label_agreement":null},{"id":"W2054243148","doi":"10.1103/physrevb.64.014502","title":"Dirac quasiparticles in the mixed state","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Quasiparticle; Physics; Semiclassical physics; Vortex; Plane wave; Quantum mechanics; Condensed matter physics; Quantum electrodynamics; Formalism (music); Superconductivity; Quantum","score_opus":0.018895193287692864,"score_gpt":0.3048094613071208,"score_spread":0.28591426801942793,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2054243148","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8128765,0.0011413406,0.13839903,0.00054673647,0.00020274436,0.000101607904,0.00028270212,0.00017864504,0.046270743],"genre_scores_gemma":[0.9754023,0.00034989655,0.019931572,0.00008145042,0.000022362945,0.000103710874,0.00013890522,0.00003354224,0.003936376],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998363,0.00005212352,0.000013588961,0.000014444254,0.000051695944,0.000031754473],"domain_scores_gemma":[0.99956495,0.000150978,0.000059247333,0.000108108405,0.00006557819,0.000051244962],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00055235496,0.00039645424,0.00059716176,0.0014814035,0.0010507161,0.0017096073,0.0008396271,0.0007139253,0.0034166863],"category_scores_gemma":[0.0009680963,0.0003329828,0.0004496432,0.0011170566,0.0011860054,0.0013954518,0.0010095696,0.00074429665,0.0006205802],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016309906,0.000054263244,0.0019070577,0.00010964948,0.000054312066,0.0002877051,0.00010814438,0.04761828,0.0055617546,0.9359037,0.0006283458,0.0076036816],"study_design_scores_gemma":[0.000047074427,0.00005814524,0.0009826932,0.000034675235,0.000018263923,0.00021291048,0.00018391773,0.7908741,0.005078393,0.20110556,0.0013652208,0.00003907262],"about_ca_topic_score_codex":0.0009456551,"about_ca_topic_score_gemma":0.0014393671,"teacher_disagreement_score":0.0034166863,"about_ca_system_score_codex":0.0007526704,"about_ca_system_score_gemma":0.00047490295,"threshold_uncertainty_score":0.0114299655},"labels":[],"label_agreement":null},{"id":"W2054713344","doi":"10.1103/physrevb.66.165224","title":"Magnetic field effects on the triplet excitons in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>β</mml:mi><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">ZnP</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>:</mml:mo></mml:math>Possibility of optical dipole relaxation in the exciton system","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"University of Toronto","keywords":"Exciton; Zeeman effect; Luminescence; Excitation; Relaxation (psychology); Physics; Dipole; Atomic physics; Magnetic field; Condensed matter physics; Phonon; Optics; Quantum mechanics","score_opus":0.015961947250673195,"score_gpt":0.24790155949135279,"score_spread":0.2319396122406796,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2054713344","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9940778,0.00025369367,0.00044449486,0.00015081352,0.00001593009,0.0000057734705,0.00014473044,0.000082368,0.0048245415],"genre_scores_gemma":[0.99772114,0.00014856659,0.00024159071,0.00003364774,0.0000054621996,0.000006140485,0.00016927515,0.00003661467,0.0016376516],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998666,0.000026102285,0.0000048565335,0.00002689908,0.000033225566,0.000042181604],"domain_scores_gemma":[0.99967325,0.00018092731,0.000053367472,0.000016035563,0.000042521166,0.000033884022],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015466113,0.00021959799,0.00015373732,0.00033464178,0.00037172265,0.00026500938,0.0003028559,0.00025518227,0.007060629],"category_scores_gemma":[0.00043777423,0.00017224294,0.0001190035,0.0002745981,0.00034938997,0.00022468998,0.00019305389,0.00045157204,0.0004585738],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00094325794,0.000062932726,0.0009988361,0.00013524237,0.000015309579,0.0002975172,0.00020409815,0.0006437947,0.9899747,0.0014097003,0.0007604805,0.0045540933],"study_design_scores_gemma":[0.000065989036,0.00035909124,0.016006207,0.000016651638,0.000020970261,0.00020081966,0.00014712907,0.003917951,0.97736096,0.00037028693,0.001518825,0.000015090921],"about_ca_topic_score_codex":0.001455966,"about_ca_topic_score_gemma":0.0022899508,"teacher_disagreement_score":0.007060629,"about_ca_system_score_codex":0.00049562735,"about_ca_system_score_gemma":0.00018411942,"threshold_uncertainty_score":0.023620129},"labels":[],"label_agreement":null},{"id":"W2054754931","doi":"10.1103/physrevb.68.115422","title":"Scattering amplitudes in non-Fermi-liquid systems","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum optics and atomic interactions","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"","keywords":"Amplitude; Fermi liquid theory; Physics; Fermi Gamma-ray Space Telescope; Scattering; Scattering amplitude; Condensed matter physics; Optics; Superconductivity","score_opus":0.012560334884975552,"score_gpt":0.3120976099451189,"score_spread":0.2995372750601434,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2054754931","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5170067,0.0009806259,0.35688916,0.0009168208,0.00018312798,0.00017397827,0.00022172925,0.000543894,0.123084016],"genre_scores_gemma":[0.9641013,0.0005467821,0.027770244,0.00010436624,0.000082598766,0.000082281054,0.00011911147,0.00014120253,0.0070520886],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99940014,0.00017416917,0.000036922862,0.00006335958,0.00020623556,0.0001191996],"domain_scores_gemma":[0.99844366,0.00096333696,0.00015733598,0.0001783158,0.00015294852,0.00010436012],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001145772,0.00088200235,0.0006278827,0.0032175223,0.0011234147,0.0020132584,0.0014999742,0.0011350985,0.009279299],"category_scores_gemma":[0.0035575598,0.00038676994,0.0009843798,0.0013535029,0.0024190384,0.003634676,0.001131876,0.0012194522,0.0014202496],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000016229846,0.00003285909,0.00024912693,0.000058027774,0.0000058788846,0.00017266773,0.0003421478,0.008095634,0.004186487,0.98130405,0.00046022073,0.005076567],"study_design_scores_gemma":[0.000017542212,0.00002381188,0.00027052022,0.000028191298,0.000008931906,0.00041629354,0.00018911256,0.14140828,0.005945829,0.8502125,0.0014431855,0.000035824694],"about_ca_topic_score_codex":0.00064739486,"about_ca_topic_score_gemma":0.0008008777,"teacher_disagreement_score":0.009279299,"about_ca_system_score_codex":0.0010385053,"about_ca_system_score_gemma":0.0006216564,"threshold_uncertainty_score":0.031042397},"labels":[],"label_agreement":null},{"id":"W2055183049","doi":"10.1103/physrevb.67.205208","title":"Infrared photocarrier radiometry of semiconductors:  Physical principles, quantitative depth profilometry, and scanning imaging of deep subsurface electronic defects","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Thermography and Photoacoustic Techniques","field":"Engineering","cited_by":167,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Infrared; Optics; Materials science; Wafer; Indium antimonide; Infrared detector; Optoelectronics; Semiconductor; Detector; Physics","score_opus":0.012281139920442202,"score_gpt":0.27784178014187433,"score_spread":0.2655606402214321,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2055183049","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.48888358,0.0050103017,0.496502,0.00030911158,0.000059641512,0.000118086034,0.00039945915,0.0012403094,0.007477519],"genre_scores_gemma":[0.7688756,0.0019680294,0.22531582,0.00007913569,0.000033737037,0.00012742938,0.0001736436,0.00007191779,0.0033547166],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998129,0.000034135723,0.0000053688773,0.000043150776,0.000088234425,0.000016228241],"domain_scores_gemma":[0.99978215,0.00008706923,0.000046143534,0.000041055708,0.00003328301,0.000010377212],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004200283,0.00042741277,0.00016216838,0.0005387479,0.00010164815,0.00046031576,0.0007041862,0.00039434436,0.00072053104],"category_scores_gemma":[0.0004210771,0.00030163207,0.00011442957,0.00031797713,0.00064443354,0.0006457182,0.0003225521,0.00056443637,0.0002481234],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000055469096,0.000019389654,0.0011395107,0.00011588248,0.0000047563176,0.00003467442,0.00005168602,0.0006959497,0.96666706,0.004837796,0.00015556009,0.026222322],"study_design_scores_gemma":[0.000009539954,0.00015319446,0.003448202,0.00001181871,0.000008201649,0.0002928887,0.000043581418,0.011761403,0.979455,0.0012245093,0.003573717,0.000017980661],"about_ca_topic_score_codex":0.0003061707,"about_ca_topic_score_gemma":0.00044128046,"teacher_disagreement_score":0.00072053104,"about_ca_system_score_codex":0.00041503992,"about_ca_system_score_gemma":0.00022085827,"threshold_uncertainty_score":0.0030113459},"labels":[],"label_agreement":null},{"id":"W2055397879","doi":"10.1103/physrevb.62.12730","title":"Electronic structure and related thermal and magnetic properties of some ternary Invar alloys","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brock University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Invar; Condensed matter physics; Magnetic moment; Ternary operation; Materials science; Hyperfine structure; Thermal expansion; Ferromagnetism; Debye model; Thermodynamics; Physics; Atomic physics","score_opus":0.0051819111768459,"score_gpt":0.21385664704040755,"score_spread":0.20867473586356164,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2055397879","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9853424,0.00030921676,0.004256433,0.00012311646,0.000016039712,0.000009151049,0.00012356367,0.00006552299,0.009754558],"genre_scores_gemma":[0.9950642,0.000102296326,0.00371147,0.000024614577,0.000004889844,0.000013518222,0.00014882693,0.000018225694,0.00091209944],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991524,0.000012590249,0.000004184841,0.000007253051,0.000040882955,0.000019811321],"domain_scores_gemma":[0.99990463,0.000028437193,0.000016633332,0.000010617359,0.00003125661,0.000008412707],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016914298,0.00023944065,0.0003804588,0.0007100209,0.0007643506,0.0005789679,0.000733748,0.00048406984,0.001753883],"category_scores_gemma":[0.00036763618,0.00018387432,0.00024178474,0.00045277484,0.0004538597,0.00024297487,0.00029961608,0.00025054507,0.00015424936],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00049649354,0.00018399105,0.008901767,0.0007359172,0.00011364304,0.00095129915,0.00049447094,0.68084306,0.15049502,0.1311041,0.0022307786,0.023449432],"study_design_scores_gemma":[0.000049655682,0.00014882184,0.0028091832,0.000021041807,0.000034356864,0.000126386,0.00021024347,0.9648856,0.021779269,0.008259976,0.0016545976,0.000020939233],"about_ca_topic_score_codex":0.0028359771,"about_ca_topic_score_gemma":0.004791205,"teacher_disagreement_score":0.0028359771,"about_ca_system_score_codex":0.00072050455,"about_ca_system_score_gemma":0.0003791949,"threshold_uncertainty_score":0.005867362},"labels":[],"label_agreement":null},{"id":"W2055759952","doi":"10.1103/physrevb.63.134427","title":"Magnetization plateaus and phase diagram in polymerized<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>S</mml:mi><mml:mo>=</mml:mo><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>2</mml:mn><mml:mn/></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>XXZ</mml:mi></mml:math>chains","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Plateau (mathematics); Phase diagram; Physics; Condensed matter physics; Magnetization; Multicritical point; Mathematical physics; Geology; Phase (matter); Mathematics; Mathematical analysis; Magnetic field; Quantum mechanics","score_opus":0.01397286047340289,"score_gpt":0.2595304905925918,"score_spread":0.2455576301191889,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2055759952","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9914834,0.00030107272,0.0027096285,0.00009801442,0.0000067361852,0.000013953588,0.00027533504,0.0002851157,0.004826703],"genre_scores_gemma":[0.99638915,0.00012938786,0.0016221909,0.000014746859,0.0000039510564,0.000028063783,0.00040480393,0.000050627714,0.0013571109],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999479,0.000006738093,0.0000024116266,0.000014167404,0.000012865414,0.000015968051],"domain_scores_gemma":[0.99965334,0.00013700643,0.00007087872,0.000021662416,0.000070183625,0.000046949728],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001615931,0.00017784735,0.00019606372,0.00096244545,0.00030525666,0.00046829882,0.00033570937,0.00025373534,0.0050079743],"category_scores_gemma":[0.0006608114,0.0001544744,0.00015707339,0.00042692068,0.00049603474,0.0004610142,0.00020005599,0.00042154896,0.00031770198],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0018514654,0.00053072395,0.013839548,0.00068876473,0.00008753997,0.0011559069,0.0020571032,0.05318191,0.8079281,0.07482507,0.005849924,0.03800389],"study_design_scores_gemma":[0.00015312138,0.0008415731,0.05502677,0.00015558535,0.000046675472,0.00028151085,0.00052460306,0.62405527,0.28656414,0.028520228,0.0037560028,0.00007459452],"about_ca_topic_score_codex":0.0013846871,"about_ca_topic_score_gemma":0.0016169301,"teacher_disagreement_score":0.0050079743,"about_ca_system_score_codex":0.00046933067,"about_ca_system_score_gemma":0.00038407234,"threshold_uncertainty_score":0.016753376},"labels":[],"label_agreement":null},{"id":"W2056281063","doi":"10.1103/physrevb.63.161101","title":"Large birefringence in two-dimensional silicon photonic crystals","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":100,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Birefringence; Photonic crystal; Optics; Materials science; Photonics; Perpendicular; Condensed matter physics; Silicon; Wavelength; Physics; Lattice (music); Band gap; Optoelectronics; Molecular physics","score_opus":0.013476480658449586,"score_gpt":0.32872166951780374,"score_spread":0.31524518885935415,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2056281063","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9888992,0.0006067552,0.006215932,0.00008380392,0.000014047536,0.000007445316,0.000015194281,0.000039380164,0.0041183108],"genre_scores_gemma":[0.9978575,0.00015791823,0.0017480387,0.0000075876756,0.0000069644557,0.0000063300618,0.000017209615,0.000003079185,0.00019538104],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99978954,0.00003421102,0.0000047792896,0.000036554855,0.00010192031,0.000033014483],"domain_scores_gemma":[0.99970955,0.0001763188,0.000036016525,0.000031789135,0.00002903095,0.000017301183],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029098807,0.00029118345,0.00023724523,0.0003322151,0.000463358,0.00043543274,0.00029010524,0.00032463355,0.00050536817],"category_scores_gemma":[0.00064116524,0.00027366923,0.00014564006,0.00025903474,0.0013130859,0.0006059686,0.00036451206,0.0004248346,0.00006101333],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018692511,0.00012516881,0.0020574897,0.00021444503,0.000019068852,0.0005890249,0.0002928766,0.030166524,0.8962662,0.06384224,0.00020631967,0.0060337493],"study_design_scores_gemma":[0.00016459558,0.000496667,0.010540836,0.000026042702,0.000020961752,0.00090077426,0.00017879295,0.32383555,0.63420844,0.027389845,0.0021619417,0.000075582124],"about_ca_topic_score_codex":0.000648153,"about_ca_topic_score_gemma":0.000764225,"teacher_disagreement_score":0.000648153,"about_ca_system_score_codex":0.00043472415,"about_ca_system_score_gemma":0.00022193782,"threshold_uncertainty_score":0.0031541586},"labels":[],"label_agreement":null},{"id":"W2056970181","doi":"10.1103/physrevb.61.317","title":"Nonlinear dynamic conductance and harmonic generation in mesoscopic multiprobe systems","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Mesoscopic physics; Harmonics; Nonlinear system; Physics; High harmonic generation; Harmonic; Quantum tunnelling; Conductance; Conductor; Voltage; Condensed matter physics; Quantum mechanics; Materials science","score_opus":0.011689053851269891,"score_gpt":0.2776229424344842,"score_spread":0.2659338885832143,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2056970181","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6050111,0.00086437626,0.36340794,0.0010366358,0.00010004517,0.000092334834,0.00007906778,0.00021139265,0.02919715],"genre_scores_gemma":[0.9849594,0.00027819184,0.012241777,0.00005795011,0.00002658884,0.000041029696,0.00001610136,0.000026422236,0.0023525537],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999207,0.000018987872,0.000001907591,0.000014218507,0.000030448338,0.000013767428],"domain_scores_gemma":[0.99981016,0.000102842074,0.000020165988,0.000028123852,0.000018749128,0.000020093346],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022818294,0.00037829296,0.00032692787,0.00040991392,0.0004021236,0.0003795399,0.00044486715,0.00060491776,0.001654781],"category_scores_gemma":[0.0007145941,0.0001717236,0.0003776867,0.00021500721,0.0010680945,0.0009490163,0.0006737717,0.00066403206,0.0001559303],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006539885,0.00008378725,0.00077231944,0.00022447928,0.000026586968,0.0009937843,0.00040466394,0.1821839,0.14927939,0.6571033,0.0005405861,0.008321663],"study_design_scores_gemma":[0.000010834926,0.000042550022,0.00041736205,0.000010087431,0.0000075388566,0.00023887359,0.00003241119,0.9201673,0.009273342,0.06916293,0.0006230982,0.000013603553],"about_ca_topic_score_codex":0.00029030695,"about_ca_topic_score_gemma":0.00024897128,"teacher_disagreement_score":0.001654781,"about_ca_system_score_codex":0.00040599232,"about_ca_system_score_gemma":0.00026707764,"threshold_uncertainty_score":0.0055357814},"labels":[],"label_agreement":null},{"id":"W2057573185","doi":"10.1103/physrevb.63.033316","title":"Far-infrared excitations in rectangular antidot arrays","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Physics; Excited state; Condensed matter physics; Degeneracy (biology); Fermi Gamma-ray Space Telescope; Infrared; Heterojunction; Atomic physics; Quantum mechanics","score_opus":0.015156455497659909,"score_gpt":0.3120695169130718,"score_spread":0.29691306141541185,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2057573185","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9985469,0.000057859168,0.00052136014,0.000010776244,0.0000039631796,0.0000015678646,0.000011304128,0.000008729657,0.0008375557],"genre_scores_gemma":[0.99833566,0.00004973343,0.0009123824,0.000005605398,0.0000013082247,0.0000031365448,0.000022896704,0.0000033942283,0.00066591],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999404,0.0000054326388,0.0000026719777,0.000017569248,0.000017394892,0.00001660288],"domain_scores_gemma":[0.999803,0.00006730737,0.000052280982,0.000023701063,0.000030224055,0.000023385828],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008031063,0.00011222918,0.00013720906,0.00011057364,0.00020935065,0.00028271734,0.0003209763,0.0001618591,0.0013346513],"category_scores_gemma":[0.00022190184,0.00013701584,0.00006646132,0.00018176613,0.00032493824,0.00031007113,0.00027500052,0.00019707394,0.00020049865],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00031069646,0.00007971192,0.002468908,0.0000843459,0.000022416274,0.00032742872,0.00024993057,0.009631217,0.9780398,0.005500524,0.00015719808,0.0031278215],"study_design_scores_gemma":[0.00008173421,0.00064944295,0.010841467,0.000014576237,0.00004808184,0.0003510579,0.00044246705,0.082595,0.900562,0.0016567413,0.0027207194,0.00003681686],"about_ca_topic_score_codex":0.0004706974,"about_ca_topic_score_gemma":0.000678754,"teacher_disagreement_score":0.0013346513,"about_ca_system_score_codex":0.00018481257,"about_ca_system_score_gemma":0.000098742195,"threshold_uncertainty_score":0.004464805},"labels":[],"label_agreement":null},{"id":"W2057883878","doi":"10.1103/physrevb.66.184507","title":"Fine structure of chiral symmetry breaking in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>QED</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>theory of underdoped high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>superconductors","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Physics; Symmetry (geometry); Computer science; Particle physics; Database; Algorithm; Mathematics; Geometry","score_opus":0.019405183687573227,"score_gpt":0.24957368254541934,"score_spread":0.23016849885784613,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2057883878","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9116628,0.0008819312,0.024540437,0.0026476327,0.0002470496,0.000077686185,0.00018357033,0.0012101382,0.05854883],"genre_scores_gemma":[0.99371356,0.00021525931,0.002128083,0.0002124135,0.00008919456,0.000043394073,0.00007825316,0.00014745972,0.003372422],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99928397,0.0002025186,0.00003155158,0.0000774306,0.00018651638,0.00021795163],"domain_scores_gemma":[0.99842095,0.0005794577,0.00027846362,0.00025472915,0.0001522189,0.000314095],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012740727,0.0009651529,0.0009856087,0.0020344548,0.0017037175,0.0026470872,0.0018266193,0.0015588684,0.0072562625],"category_scores_gemma":[0.0037858745,0.0008550851,0.0010169109,0.00083066424,0.003552126,0.0022207059,0.0019196842,0.0026709423,0.00046172226],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007344913,0.00024305757,0.0037840654,0.0003018373,0.00012691095,0.0015731232,0.0005915276,0.08840948,0.026092429,0.86730844,0.0034615574,0.007373143],"study_design_scores_gemma":[0.00019845602,0.00016194227,0.0074309492,0.000088146706,0.000082914674,0.00042702782,0.0001892342,0.58923864,0.0073079825,0.3938979,0.00085490686,0.00012194829],"about_ca_topic_score_codex":0.0038819641,"about_ca_topic_score_gemma":0.0041231127,"teacher_disagreement_score":0.0072562625,"about_ca_system_score_codex":0.0020522138,"about_ca_system_score_gemma":0.00095972675,"threshold_uncertainty_score":0.024274647},"labels":[],"label_agreement":null},{"id":"W2058718018","doi":"10.1103/physrevb.64.153306","title":"Kondo resonance in a multiprobe quantum dot","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":59,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Quantum dot; Kondo effect; Conductance; Local density of states; Physics; Resonance (particle physics); Coupling (piping); Condensed matter physics; Quantum; Kondo insulator; Differential (mechanical device); Quantum mechanics; Electrical resistivity and conductivity; Materials science","score_opus":0.012708537409472816,"score_gpt":0.28249728236247007,"score_spread":0.26978874495299726,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2058718018","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9411491,0.00014718641,0.048840534,0.00041291813,0.000033234497,0.000024304167,0.00003250099,0.00014113006,0.009219092],"genre_scores_gemma":[0.9937064,0.00004402628,0.00510319,0.00004445672,0.000004605151,0.000017619792,0.0000071832555,0.0000073986785,0.0010651308],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99986625,0.00002614318,0.0000041580547,0.000041378662,0.00004374086,0.000018301742],"domain_scores_gemma":[0.9996661,0.00017949048,0.000037325266,0.00005429007,0.000023122557,0.000039707196],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030383657,0.00023933222,0.00029394004,0.0003125735,0.0005755202,0.00070656213,0.0004947718,0.00081224006,0.0013983819],"category_scores_gemma":[0.00075193524,0.00023008074,0.00022144278,0.00017992967,0.0009924609,0.0008658622,0.0006585091,0.0005118506,0.0001623906],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020635757,0.00017607356,0.0018890267,0.00010067591,0.000032726664,0.0010536291,0.00035730223,0.025148395,0.5948151,0.37008762,0.00040324053,0.005729865],"study_design_scores_gemma":[0.00010011234,0.00053619384,0.002066408,0.000027832586,0.000041079325,0.00065757264,0.0001641984,0.6957415,0.1990225,0.09954482,0.0020387385,0.000058969592],"about_ca_topic_score_codex":0.00041772192,"about_ca_topic_score_gemma":0.0005864584,"teacher_disagreement_score":0.0013983819,"about_ca_system_score_codex":0.0005598286,"about_ca_system_score_gemma":0.00019924827,"threshold_uncertainty_score":0.0046780705},"labels":[],"label_agreement":null},{"id":"W2058805746","doi":"10.1103/physrevb.67.115312","title":"Nonequilibrium fluctuations and decoherence in nanomechanical devices coupled to the tunnel junction","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Mechanical and Optical Resonators","field":"Physics and Astronomy","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"D-Wave Systems (Canada)","funders":"","keywords":"Quantum decoherence; Physics; Non-equilibrium thermodynamics; Tunnel junction; Quantum; Nonlinear system; Voltage; Quantum tunnelling; Position (finance); Electron; Condensed matter physics; Quantum mechanics","score_opus":0.011821255008440305,"score_gpt":0.2884200038798665,"score_spread":0.2765987488714262,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2058805746","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9539553,0.000512421,0.042631812,0.00023719124,0.000021813676,0.000011964894,0.000015622587,0.000057212008,0.0025566646],"genre_scores_gemma":[0.99812824,0.000132081,0.0012439534,0.000014263224,0.000008789271,0.000007849948,0.0000048939814,0.000009033546,0.0004508629],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99986684,0.000033958848,0.0000054932016,0.000022772816,0.000040112638,0.000030788004],"domain_scores_gemma":[0.99965334,0.00017301968,0.000074298754,0.00003168067,0.000037453905,0.00003025376],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040667134,0.000277622,0.00039140135,0.00029775797,0.00037753032,0.00057771,0.00050695764,0.00038802484,0.0005286993],"category_scores_gemma":[0.0012508801,0.00019478919,0.00023690164,0.00027474813,0.0012211755,0.0008215111,0.0004896965,0.000489532,0.00006234766],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028308723,0.00020292247,0.005053995,0.0001366575,0.0001311763,0.001368812,0.0010098807,0.49438697,0.18768136,0.29918712,0.00043760252,0.01012034],"study_design_scores_gemma":[0.000014418522,0.000075979515,0.001007575,0.000005206861,0.00001032259,0.000084791915,0.00004207319,0.97677976,0.0048376424,0.016854294,0.00026610482,0.000021826869],"about_ca_topic_score_codex":0.0013278131,"about_ca_topic_score_gemma":0.00085305056,"teacher_disagreement_score":0.0013278131,"about_ca_system_score_codex":0.00047562487,"about_ca_system_score_gemma":0.00023808115,"threshold_uncertainty_score":0.0034509301},"labels":[],"label_agreement":null},{"id":"W2059672871","doi":"10.1103/physrevb.67.193307","title":"Stability of Sb line structures on Si(001)","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor materials and interfaces","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Hatch (Canada)","funders":"","keywords":"Materials science; Stability (learning theory); Line (geometry); Condensed matter physics; Physics; Computer science; Mathematics; Geometry","score_opus":0.025561930522985835,"score_gpt":0.31598508673487974,"score_spread":0.2904231562118939,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2059672871","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99703836,0.00016869148,0.00084533525,0.000024694316,0.0000044382055,0.0000026217126,0.000064583735,0.000029872715,0.001821457],"genre_scores_gemma":[0.998589,0.00013129908,0.0005904344,0.000005142616,0.0000018210617,0.0000035815544,0.00014756116,0.000010231752,0.00052091887],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999728,0.0000036130482,8.608398e-7,0.0000060106654,0.000011054146,0.000005658454],"domain_scores_gemma":[0.99993443,0.000020082778,0.000015437083,0.000005687668,0.000015599682,0.00000873158],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000054822678,0.00015309922,0.0001295373,0.00019301946,0.00029507442,0.00031433578,0.0002434145,0.00021040223,0.0027666641],"category_scores_gemma":[0.00016243209,0.0001301199,0.00010710499,0.0001580626,0.00021219955,0.00020677608,0.00011135389,0.0002168699,0.00031611396],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005731347,0.00012343336,0.009224393,0.00031403455,0.000082378254,0.00029592423,0.00030970905,0.07858801,0.8773329,0.017321702,0.0009938804,0.01484048],"study_design_scores_gemma":[0.00009057839,0.0006839358,0.01802514,0.000028409895,0.00004488606,0.00028711974,0.00026254606,0.47955173,0.49255738,0.005166354,0.003267222,0.000034629633],"about_ca_topic_score_codex":0.0012545347,"about_ca_topic_score_gemma":0.0011334637,"teacher_disagreement_score":0.0027666641,"about_ca_system_score_codex":0.00035964593,"about_ca_system_score_gemma":0.00013022142,"threshold_uncertainty_score":0.009255409},"labels":[],"label_agreement":null},{"id":"W2060827848","doi":"10.1103/physrevb.61.5337","title":"Second-order optical response in semiconductors","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Spectroscopy and Quantum Chemical Studies","field":"Physics and Astronomy","cited_by":887,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Omega; Quantum mechanics; Excitation; Photocurrent; Semiconductor; Order (exchange); Nonlinear optical; Electron; Formalism (music); Atomic physics; Condensed matter physics; Mathematical physics; Nonlinear system","score_opus":0.009642942232820638,"score_gpt":0.30606970738152406,"score_spread":0.2964267651487034,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2060827848","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.34951988,0.002473528,0.48242897,0.0014594003,0.0002850934,0.0001280693,0.00014594957,0.00049873523,0.16306043],"genre_scores_gemma":[0.93078524,0.0014343748,0.046155334,0.00039059014,0.00006527603,0.00009053151,0.00006883531,0.00008224362,0.020927582],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997398,0.000045004508,0.000006909277,0.000031037012,0.000117786316,0.000059409118],"domain_scores_gemma":[0.99987996,0.000052872125,0.000011481473,0.000023824405,0.000019619616,0.00001222172],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028058336,0.00039978797,0.0003458061,0.00056881196,0.00048588842,0.00084903894,0.00069840904,0.00071746204,0.0014191024],"category_scores_gemma":[0.00042547172,0.00021785246,0.00045613458,0.00032999067,0.0010256227,0.0009611946,0.00078139437,0.0007326108,0.00037483475],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000017252149,0.000033173423,0.0002385632,0.00007698193,0.000006830971,0.0001638969,0.00027560457,0.017545756,0.03618744,0.9409062,0.00048124357,0.0040670466],"study_design_scores_gemma":[0.00002415533,0.00006866188,0.0005077277,0.00004086443,0.000007943447,0.0004048373,0.00015070253,0.43461937,0.018882822,0.53756183,0.007687193,0.000043934884],"about_ca_topic_score_codex":0.0017497919,"about_ca_topic_score_gemma":0.0016529409,"teacher_disagreement_score":0.0017497919,"about_ca_system_score_codex":0.001074405,"about_ca_system_score_gemma":0.0006943485,"threshold_uncertainty_score":0.0077953935},"labels":[],"label_agreement":null},{"id":"W2062502298","doi":"10.1103/physrevb.62.r9244","title":"Long-range antiferromagnetic order in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>S</mml:mi><mml:mo>=</mml:mo><mml:mn>1</mml:mn><mml:mn/></mml:math>chain compound<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">LiVGe</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>6</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Antiferromagnetism; Neutron diffraction; Phase transition; Ferromagnetism; Atmospheric temperature range; Distortion (music); Physics; Crystallography; Phase (matter); Condensed matter physics; Order (exchange); Materials science; Chemistry; Crystal structure; Thermodynamics; Optoelectronics; Quantum mechanics","score_opus":0.0169313436051196,"score_gpt":0.24720574322041952,"score_spread":0.2302743996152999,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2062502298","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.46514213,0.002153113,0.02707655,0.0031909212,0.001532155,0.00009649762,0.0063138953,0.001689495,0.49280533],"genre_scores_gemma":[0.77625704,0.0018490034,0.023028884,0.000688692,0.00015263504,0.000118095115,0.007643504,0.0010064186,0.18925563],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991596,0.000010775078,0.000004041803,0.000017895012,0.000032964726,0.000018348404],"domain_scores_gemma":[0.99991894,0.000011716558,0.000008142071,0.000017603521,0.000029362673,0.000014288132],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011506332,0.00023673747,0.00027193985,0.00046094655,0.0008254538,0.0012104523,0.00042150638,0.0004522708,0.05125977],"category_scores_gemma":[0.00022225863,0.00026319365,0.00015789148,0.0004824391,0.0002841864,0.0010910752,0.0003504785,0.00080671447,0.008134933],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00066008617,0.00024126949,0.0013191485,0.000986413,0.000047056845,0.00092591514,0.0004883453,0.0052115447,0.3743929,0.36975837,0.185084,0.060885016],"study_design_scores_gemma":[0.0003186094,0.0012304158,0.0069191814,0.0001729699,0.00006907854,0.0007452099,0.0006060236,0.044564217,0.31911483,0.09120518,0.5348923,0.00016191519],"about_ca_topic_score_codex":0.0030882529,"about_ca_topic_score_gemma":0.011579573,"teacher_disagreement_score":0.05125977,"about_ca_system_score_codex":0.0008707842,"about_ca_system_score_gemma":0.0006180268,"threshold_uncertainty_score":0.17148101},"labels":[],"label_agreement":null},{"id":"W2063545275","doi":"10.1103/physrevb.63.064406","title":"Mössbauer spectra of single-domain fine particle systems described using a multiple-level relaxation model for superparamagnets","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":55,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Superparamagnetism; Anisotropy; Relaxation (psychology); Spectral line; Physics; Nuclear magnetic resonance; Magnetic relaxation; Particle (ecology); Domain (mathematical analysis); Condensed matter physics; Materials science; Magnetization; Quantum mechanics; Magnetic field; Mathematical analysis; Mathematics","score_opus":0.05646873500155414,"score_gpt":0.30126172490734227,"score_spread":0.24479298990578813,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2063545275","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7337707,0.0010493096,0.2606151,0.000332128,0.000052258692,0.000068843656,0.00022221713,0.0003539293,0.0035355233],"genre_scores_gemma":[0.9547616,0.00074776495,0.04060199,0.000050260645,0.000014916376,0.0000521974,0.00023367099,0.00003973416,0.003497969],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999938,0.000015288779,0.0000028397558,0.000012978488,0.000020919297,0.0000099428125],"domain_scores_gemma":[0.9998555,0.00004772306,0.000030436742,0.000030616833,0.000022188375,0.000013567803],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034594396,0.00026032786,0.00038620108,0.00033328132,0.00022087597,0.00023689237,0.00057106256,0.0005042754,0.0006605051],"category_scores_gemma":[0.00048669966,0.00016825025,0.00042216366,0.00033043517,0.0002836964,0.0006143566,0.00020092004,0.0005056761,0.000192949],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016899136,0.000101147234,0.0020586262,0.0002342258,0.00010360228,0.0003127711,0.00020880628,0.6324342,0.29641327,0.054230947,0.0010653934,0.012668006],"study_design_scores_gemma":[0.00001291551,0.000052062016,0.0010832251,0.0000048787897,0.000009325041,0.0000530434,0.000021162243,0.9748308,0.015472746,0.007713579,0.0007335052,0.000012764187],"about_ca_topic_score_codex":0.0019466041,"about_ca_topic_score_gemma":0.0024871258,"teacher_disagreement_score":0.0019466041,"about_ca_system_score_codex":0.000652828,"about_ca_system_score_gemma":0.00034209623,"threshold_uncertainty_score":0.004736662},"labels":[],"label_agreement":null},{"id":"W2063860089","doi":"10.1103/physrevb.65.035107","title":"Tunability of acoustic spectral gaps and transmission in periodically stubbed waveguides","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Acoustic Wave Phenomena Research","field":"Engineering","cited_by":43,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"","keywords":"Stub (electronics); Waveguide; Transfer matrix; Transmission (telecommunications); Optics; Band gap; Physics; Transfer-matrix method (optics); Materials science; Optoelectronics; Telecommunications; Electronic engineering","score_opus":0.01127082645520678,"score_gpt":0.28944899953887127,"score_spread":0.2781781730836645,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2063860089","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97776276,0.00022368362,0.018838692,0.000046040404,0.000012683771,0.0000063174593,0.00002434043,0.000094926654,0.00299055],"genre_scores_gemma":[0.9954314,0.00012588964,0.0039664404,0.000004829042,0.000002594335,0.000007683829,0.000015564703,0.000011508785,0.00043408445],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99992263,0.000017490682,0.0000031956681,0.000016265074,0.000026084808,0.00001426421],"domain_scores_gemma":[0.9996112,0.00020074229,0.00008273074,0.000049166338,0.00002946706,0.00002680807],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021866197,0.00021826266,0.00014613864,0.00026770044,0.00020041112,0.00033754038,0.00031283527,0.00033301613,0.0007225998],"category_scores_gemma":[0.00076171476,0.00021786908,0.000113327165,0.00014499312,0.00065741426,0.0005582093,0.00026254353,0.00025543736,0.00011351395],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00043131877,0.0000970675,0.00093051285,0.00013288397,0.0000136298,0.0003900721,0.0002674143,0.037408326,0.9050053,0.045905296,0.00020416944,0.0092140855],"study_design_scores_gemma":[0.00008893485,0.00045622422,0.0030767177,0.00003775667,0.000019469417,0.0005875514,0.00023036297,0.4752194,0.48798746,0.030258851,0.00199667,0.000040608218],"about_ca_topic_score_codex":0.00011224074,"about_ca_topic_score_gemma":0.00015021664,"teacher_disagreement_score":0.0007225998,"about_ca_system_score_codex":0.00024874537,"about_ca_system_score_gemma":0.00011507582,"threshold_uncertainty_score":0.0024172664},"labels":[],"label_agreement":null},{"id":"W2064209855","doi":"10.1103/physrevb.63.014502","title":"Spectral properties and pseudogaps in a model with<b><i>d</i></b>-wave pairing symmetry","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Pseudogap; Pairing; Physics; Condensed matter physics; Cuprate; Symmetry (geometry); Photoemission spectroscopy; Angle-resolved photoemission spectroscopy; Fermi surface; Density of states; Spectral line; Electronic structure; Quantum mechanics; Superconductivity","score_opus":0.0270747053855497,"score_gpt":0.2460006308752909,"score_spread":0.21892592548974119,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2064209855","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.93156046,0.00047904043,0.039577015,0.0009690275,0.0001121781,0.00004732683,0.00012921426,0.00012836455,0.026997346],"genre_scores_gemma":[0.9908303,0.00021929717,0.005377498,0.00007724566,0.000038237373,0.00003654277,0.00007537047,0.000029639727,0.0033159277],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998332,0.000050885,0.000007131137,0.000015419628,0.000047569374,0.000045790926],"domain_scores_gemma":[0.99954706,0.0001446554,0.00007016264,0.00009305914,0.00004667715,0.000098344615],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00069423765,0.0005402002,0.0009461783,0.0011052407,0.0013664113,0.001962842,0.001238621,0.0016046828,0.0019247001],"category_scores_gemma":[0.00080448826,0.00032765832,0.001241555,0.00050315715,0.0019511479,0.0014898933,0.0008296264,0.0007349958,0.0003645715],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018926854,0.00015775116,0.0011299493,0.00010115696,0.000030294028,0.00051845115,0.00017438662,0.09748902,0.011890349,0.8848466,0.0009841035,0.0024885144],"study_design_scores_gemma":[0.00007620665,0.00009636621,0.0004748172,0.000014172623,0.00001469637,0.00025639468,0.00009418956,0.7604753,0.0013030032,0.2365893,0.0005727793,0.00003281066],"about_ca_topic_score_codex":0.0019142942,"about_ca_topic_score_gemma":0.0018191586,"teacher_disagreement_score":0.001962842,"about_ca_system_score_codex":0.00075642206,"about_ca_system_score_gemma":0.00060025,"threshold_uncertainty_score":0.006438732},"labels":[],"label_agreement":null},{"id":"W2065793336","doi":"10.1103/physrevb.66.214519","title":"Pair-breaking effects in the pseudogap regime: Application to high-temperature superconductors","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Pseudogap; Superconductivity; Condensed matter physics; Cuprate; Physics; High-temperature superconductivity; Impurity; Quantum mechanics","score_opus":0.01020754066375126,"score_gpt":0.263413065999907,"score_spread":0.25320552533615576,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2065793336","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7837209,0.014470773,0.15471698,0.0016007011,0.00066413905,0.000060336242,0.000055083245,0.00043195343,0.04427911],"genre_scores_gemma":[0.9770621,0.0031671799,0.01769181,0.000084163126,0.00019201612,0.000021265345,0.000012207177,0.000021274616,0.0017478765],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999049,0.000027221951,0.0000046985483,0.00001321158,0.000037947975,0.000012083873],"domain_scores_gemma":[0.999851,0.000064084306,0.000021348475,0.000028501941,0.000021190099,0.000013816513],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022466363,0.00038387795,0.0004273458,0.00040369335,0.00065120397,0.0007044949,0.00053101114,0.0005708539,0.00093829207],"category_scores_gemma":[0.00056558795,0.00013904508,0.00028425225,0.0003853563,0.0007116266,0.0008004599,0.0009132731,0.0006568735,0.0001786564],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027137506,0.00022571013,0.002533713,0.0006005961,0.000044734974,0.0016079991,0.00057499955,0.050087996,0.1261828,0.7178348,0.0017096252,0.09832558],"study_design_scores_gemma":[0.000082606944,0.0004536057,0.0039025114,0.000057603203,0.0000591832,0.0016037861,0.00023944477,0.40446618,0.059048716,0.5167849,0.013223024,0.00007837495],"about_ca_topic_score_codex":0.00018591032,"about_ca_topic_score_gemma":0.00017482783,"teacher_disagreement_score":0.00093829207,"about_ca_system_score_codex":0.00016829291,"about_ca_system_score_gemma":0.00012278283,"threshold_uncertainty_score":0.0031388998},"labels":[],"label_agreement":null},{"id":"W2065904867","doi":"10.1103/physrevb.65.064507","title":"Tunneling conductance for<i>d</i>-wave superconductors: Dependence on crystallographic orientation and Fermi surface","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Condensed matter physics; Fermi surface; Brillouin zone; Superconductivity; Physics; Quantum tunnelling; Band gap; Fermi energy; Electron; Quantum mechanics","score_opus":0.03835961016629729,"score_gpt":0.2865389739506872,"score_spread":0.24817936378438993,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2065904867","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99682814,0.00029532387,0.0015809471,0.00005968805,0.0000088146735,0.000004772446,0.000043453314,0.000034316847,0.0011446238],"genre_scores_gemma":[0.99908507,0.00020611945,0.000517556,0.0000051467264,0.0000017284085,0.0000022125137,0.00003470747,0.000005825907,0.00014162208],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999527,0.000009081772,0.0000031829043,0.000010432441,0.000013445857,0.000011083723],"domain_scores_gemma":[0.9998118,0.000100163255,0.00002794557,0.000020060983,0.00002362576,0.000016531703],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017706784,0.00016847964,0.00024981922,0.00040265848,0.0001288333,0.00051759084,0.00027172602,0.00029226954,0.00051872013],"category_scores_gemma":[0.00054623536,0.00013099544,0.00021917337,0.00044352867,0.00040785994,0.00032648494,0.00020690978,0.00026491212,0.0000802585],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006314656,0.00012516373,0.011825733,0.00038540756,0.000057347646,0.00077383465,0.0004627154,0.019514954,0.9296273,0.021322083,0.0004138595,0.014860231],"study_design_scores_gemma":[0.00009929219,0.0008733165,0.03036085,0.00004194188,0.00015281279,0.002732574,0.00054176577,0.40933135,0.534818,0.019110236,0.0018271714,0.000110691675],"about_ca_topic_score_codex":0.00057430536,"about_ca_topic_score_gemma":0.0005767769,"teacher_disagreement_score":0.00057430536,"about_ca_system_score_codex":0.00032584814,"about_ca_system_score_gemma":0.00014687765,"threshold_uncertainty_score":0.0023641586},"labels":[],"label_agreement":null},{"id":"W2066818499","doi":"10.1103/physrevb.64.045211","title":"Electronic structure of thiophenes and phtalocyanines","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photochemistry and Electron Transfer Studies","field":"Chemistry","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; Lawrence Berkeley National Laboratory; Russian Foundation for Basic Research; University of Saskatchewan; U.S. Department of Energy","keywords":"Copper; Electronic structure; Metal; Spectral line; Physics; Materials science; Molecule; Ultraviolet; Emission spectrum; Crystallography; Atomic physics; Carbon fibers; Chemistry; Condensed matter physics; Optics; Quantum mechanics","score_opus":0.006813197621847261,"score_gpt":0.26667212915236027,"score_spread":0.259858931530513,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2066818499","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99760276,0.00022276139,0.0008107818,0.000022895849,0.000002039039,0.00000245455,0.000077651806,0.00001673897,0.0012419131],"genre_scores_gemma":[0.99798405,0.00015397226,0.00055932964,0.000010376416,0.0000014137846,0.0000059815843,0.00015912566,0.00000779828,0.0011179453],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99993753,0.000010255805,0.0000016362703,0.0000131133465,0.000023129012,0.0000143059315],"domain_scores_gemma":[0.999907,0.000029867406,0.000019340205,0.000008511966,0.000027519185,0.000007791081],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0000794095,0.00015585152,0.000064538144,0.00017585287,0.00015837958,0.00017286174,0.00017573971,0.00016252257,0.0018104565],"category_scores_gemma":[0.0002635035,0.00007281232,0.00006922032,0.00014986112,0.00026292255,0.00016162485,0.00012322725,0.0001534766,0.00013396141],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015403918,0.000015584656,0.001544711,0.00011392461,0.00001460367,0.00013471255,0.00010365121,0.0021087606,0.9887453,0.0025397579,0.00015640302,0.004368522],"study_design_scores_gemma":[0.000010572723,0.00017066783,0.0072365035,0.000011834341,0.000009203524,0.000114882845,0.00006571152,0.0066209133,0.983868,0.00035405578,0.0015296553,0.000008024594],"about_ca_topic_score_codex":0.0009213647,"about_ca_topic_score_gemma":0.0006950814,"teacher_disagreement_score":0.0018104565,"about_ca_system_score_codex":0.00024248843,"about_ca_system_score_gemma":0.00009565843,"threshold_uncertainty_score":0.006056607},"labels":[],"label_agreement":null},{"id":"W2067775549","doi":"10.1103/physrevb.68.094507","title":"Doping dependence of the upper critical field of electron-doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Pr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ce</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>thin films","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":32,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Condensed matter physics; Physics; Electrical resistivity and conductivity; Superconductivity; Doping; Critical field; Cuprate; Field (mathematics); Quantum mechanics","score_opus":0.015837295771100292,"score_gpt":0.2550983917319638,"score_spread":0.2392610959608635,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2067775549","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9601522,0.0028769723,0.0010224445,0.0009414773,0.00023869015,0.000031585732,0.0012548272,0.0004682481,0.033013556],"genre_scores_gemma":[0.99350464,0.0007953814,0.0005149622,0.000105835374,0.00003627556,0.00003390133,0.0007989365,0.00011311302,0.0040968833],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99975187,0.000019189283,0.000008956841,0.00003754078,0.00006631933,0.00011619463],"domain_scores_gemma":[0.9993722,0.00025225934,0.000089701185,0.000043796612,0.00016510488,0.00007694084],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025935352,0.00035858343,0.00036930045,0.00097557163,0.0006537377,0.0009593085,0.0005525308,0.0005376872,0.012979639],"category_scores_gemma":[0.0010999469,0.00023318476,0.00014711088,0.0005552327,0.0006762916,0.00052536343,0.00033659433,0.0007968373,0.0012686176],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0025846595,0.00020763619,0.0028183772,0.0008482182,0.00009106118,0.00083414855,0.0010269242,0.003262323,0.93470705,0.016062083,0.019476041,0.018081544],"study_design_scores_gemma":[0.00006175999,0.0004727381,0.016350424,0.000277795,0.000043126813,0.00020681175,0.0006213762,0.0191641,0.9481438,0.0026452674,0.011919027,0.00009382045],"about_ca_topic_score_codex":0.006981826,"about_ca_topic_score_gemma":0.0065701976,"teacher_disagreement_score":0.012979639,"about_ca_system_score_codex":0.0010874124,"about_ca_system_score_gemma":0.00049077574,"threshold_uncertainty_score":0.04342115},"labels":[],"label_agreement":null},{"id":"W2068081664","doi":"10.1103/physrevb.64.224101","title":"Non-Arrhenius stretched exponential dielectric relaxation in antiferromagnetic<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">TiBO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>single crystals","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Arrhenius equation; Dielectric; Relaxation (psychology); Cole–Cole equation; Parameterized complexity; Exponential function; Materials science; Spectral line; Thermodynamics; Antiferromagnetism; Condensed matter physics; Physics; Nuclear magnetic resonance; Mathematics; Mathematical analysis; Quantum mechanics; Algorithm; Kinetics","score_opus":0.014965198475797366,"score_gpt":0.23892949287912263,"score_spread":0.22396429440332527,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2068081664","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9692768,0.00069205277,0.027070044,0.00010203243,0.00003784948,0.000017994565,0.00034667063,0.00016921114,0.0022872933],"genre_scores_gemma":[0.9845753,0.00079375034,0.009250467,0.000023829578,0.000009775686,0.00002762406,0.00044002675,0.000069257854,0.0048100967],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999913,0.000009481273,0.000003966679,0.0000305416,0.000026513857,0.00001654647],"domain_scores_gemma":[0.999793,0.000090022244,0.000046606554,0.00001989303,0.000038078942,0.000012453146],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002468,0.00022039907,0.00029674143,0.00022370412,0.00018134927,0.00024262,0.0005079681,0.00020840087,0.0016684097],"category_scores_gemma":[0.0005135498,0.00027415965,0.00018545106,0.00036076608,0.0002558537,0.00049613335,0.00009689516,0.000550599,0.00031244956],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020082541,0.000072156494,0.0010404392,0.00029866447,0.000036490354,0.000217031,0.0002273509,0.004769303,0.9828279,0.0049818517,0.0004656044,0.004862423],"study_design_scores_gemma":[0.000061190985,0.00035091757,0.008936335,0.000022478189,0.00003457442,0.00039048502,0.00015064189,0.1658576,0.8180213,0.0029230374,0.0031929796,0.000058465677],"about_ca_topic_score_codex":0.0013565724,"about_ca_topic_score_gemma":0.0022272926,"teacher_disagreement_score":0.0016684097,"about_ca_system_score_codex":0.00030573635,"about_ca_system_score_gemma":0.00024138026,"threshold_uncertainty_score":0.0055814385},"labels":[],"label_agreement":null},{"id":"W2069033549","doi":"10.1103/physrevb.62.978","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">Ni</mml:mi></mml:math>-type chemical order in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Fe</mml:mi></mml:mrow><mml:mrow><mml:mn>65</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ni</mml:mi></mml:mrow><mml:mrow><mml:mn>35</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>films grown by evaporation: Implications regarding the Invar problem","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"","keywords":"Invar; Order (exchange); Ferromagnetism; Materials science; Physics; Condensed matter physics; Thermodynamics; Thermal expansion","score_opus":0.015835755343844373,"score_gpt":0.24402996753008746,"score_spread":0.22819421218624308,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2069033549","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0011168781,0.00040508376,0.20980386,0.0042785825,0.0018984139,0.0011657003,0.1739942,0.16934565,0.4379917],"genre_scores_gemma":[0.0076296562,0.0017795991,0.11250388,0.0034042448,0.00043272023,0.0013188346,0.28212386,0.0958362,0.49497098],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99763525,0.00036875505,0.0003378508,0.00035618164,0.0010794401,0.00022255609],"domain_scores_gemma":[0.9961935,0.00074187526,0.00019524543,0.0013396078,0.0012781103,0.000251581],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0026920382,0.0038701058,0.0019232589,0.0036253093,0.0020851803,0.01072554,0.00541933,0.004517542,0.52161485],"category_scores_gemma":[0.0078098373,0.002904025,0.0032308348,0.0052140057,0.0012099394,0.009935419,0.0038231846,0.0045876424,0.6112764],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012396193,0.00007704036,0.00019554376,0.00039460635,0.000026668145,0.000127573,0.00015819374,0.00096440106,0.0024437478,0.01884034,0.9317487,0.044899303],"study_design_scores_gemma":[0.00002905517,0.000011943361,0.000174695,0.00006544156,0.000009287813,0.000079603844,0.00005500247,0.0010037599,0.0021676996,0.0047535077,0.9916152,0.000034923043],"about_ca_topic_score_codex":0.033065595,"about_ca_topic_score_gemma":0.033794384,"teacher_disagreement_score":0.52161485,"about_ca_system_score_codex":0.0049962075,"about_ca_system_score_gemma":0.0038330553,"threshold_uncertainty_score":0.6823584},"labels":[],"label_agreement":null},{"id":"W2070649927","doi":"10.1103/physrevb.63.214105","title":"Structure and energetics of long-period tilt grain boundaries using an effective Hamiltonian","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Microstructure and mechanical properties","field":"Materials Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"U.S. Department of Energy","keywords":"Hamiltonian (control theory); Metastability; Grain boundary; Statistical physics; Monte Carlo method; Physics; Energetics; Hybrid Monte Carlo; Materials science; Thermodynamics; Markov chain Monte Carlo; Quantum mechanics; Mathematics; Microstructure; Mathematical optimization","score_opus":0.013963056714488012,"score_gpt":0.2928302144233803,"score_spread":0.2788671577088923,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2070649927","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98691875,0.000109098975,0.009910992,0.0000754807,0.000006601703,0.00000789914,0.000040904823,0.000033400127,0.002896951],"genre_scores_gemma":[0.99691427,0.000046488403,0.0027209641,0.0000079422225,0.0000018604301,0.00001085862,0.000039079125,0.000014337591,0.00024411088],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999198,0.000023300976,0.0000043931304,0.0000069050857,0.000028535995,0.000017069044],"domain_scores_gemma":[0.99982554,0.000081793,0.000019574705,0.000025005671,0.000030098661,0.000018013692],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026086206,0.00019413761,0.00038492715,0.00036964932,0.0005216206,0.00054364064,0.0004919096,0.00042472425,0.0012416886],"category_scores_gemma":[0.00082562293,0.00022867841,0.00019501385,0.00042145234,0.0008910274,0.0007130461,0.0003706531,0.00031579586,0.00007043572],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006208241,0.000033069657,0.002524873,0.00004822034,0.000018999688,0.00013114499,0.00007343208,0.9484602,0.011732773,0.03388115,0.00014621271,0.0028877005],"study_design_scores_gemma":[0.000025516092,0.00002702142,0.0011521358,0.00000471764,0.000005968287,0.000018088254,0.000031811156,0.9883745,0.0019733976,0.008194634,0.00018374654,0.000008450994],"about_ca_topic_score_codex":0.0033146038,"about_ca_topic_score_gemma":0.0036752513,"teacher_disagreement_score":0.0033146038,"about_ca_system_score_codex":0.0007913184,"about_ca_system_score_gemma":0.000601877,"threshold_uncertainty_score":0.0065906644},"labels":[],"label_agreement":null},{"id":"W2072715415","doi":"10.1103/physrevb.66.075129","title":"Cluster perturbation theory for Hubbard models","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":245,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Hubbard model; Perturbation theory (quantum mechanics); Physics; Coupled cluster; Ground state; Cluster (spacecraft); Perturbation (astronomy); Quantum mechanics; Statistical physics; Wave function; Electron; t-J model; Quantum electrodynamics; Superconductivity","score_opus":0.03059038540548636,"score_gpt":0.2859916407528819,"score_spread":0.25540125534739555,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2072715415","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.08278635,0.0049881367,0.7682042,0.0043943105,0.00070841075,0.00015115133,0.00064178964,0.0011685523,0.13695711],"genre_scores_gemma":[0.8530075,0.0038325305,0.07677942,0.0008756822,0.000715308,0.0003919245,0.0005434378,0.00043149744,0.06342269],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9996965,0.00011308851,0.0000062070626,0.00001869267,0.00012677917,0.00003878937],"domain_scores_gemma":[0.9995915,0.00015230948,0.000028289036,0.00006514031,0.00010091948,0.00006191044],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005171411,0.00052725046,0.00074470567,0.001352517,0.0007812682,0.0010589956,0.0012680957,0.00084273913,0.0044971076],"category_scores_gemma":[0.0014420789,0.00022550556,0.00059703115,0.0010822682,0.0010413582,0.0013403249,0.0009494356,0.0013358956,0.00094884174],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000006380383,0.000008477095,0.00004138601,0.00001900405,0.000008336911,0.000031313295,0.000041570183,0.034894798,0.00036249377,0.9611385,0.001802608,0.00164524],"study_design_scores_gemma":[0.0000047277663,0.00000352337,0.00004445336,0.000005544847,0.000002562976,0.000012632169,0.00001688143,0.29447958,0.00010654282,0.70324886,0.002069151,0.0000055255005],"about_ca_topic_score_codex":0.004775594,"about_ca_topic_score_gemma":0.0028154,"teacher_disagreement_score":0.004775594,"about_ca_system_score_codex":0.0013260437,"about_ca_system_score_gemma":0.0008203451,"threshold_uncertainty_score":0.015044332},"labels":[],"label_agreement":null},{"id":"W2072920997","doi":"10.1103/physrevb.61.3745","title":"Comment on “Angle dependence of magnetization in a single-domain<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>sphere”","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"","keywords":"Physics; Domain (mathematical analysis); Magnetization; Hysteresis; Zero (linguistics); Condensed matter physics; Nuclear magnetic resonance; Quantum mechanics; Mathematical analysis; Magnetic field; Mathematics","score_opus":0.01685401550382322,"score_gpt":0.2435895420900658,"score_spread":0.22673552658624258,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2072920997","genre_codex":"commentary","genre_gemma":"commentary","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"commentary","genre_consensus":"commentary","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0010709058,0.0014120982,0.0031688146,0.75450623,0.20509182,0.00008855239,0.0024876082,0.0034472789,0.028726695],"genre_scores_gemma":[0.016387641,0.0020818517,0.0041134213,0.7975362,0.067915775,0.00022276616,0.0016565607,0.0018536543,0.10823216],"study_design_codex":"not_applicable","study_design_gemma":"not_applicable","domain_scores_codex":[0.9973821,0.00031197374,0.0002653531,0.0004139726,0.0012988336,0.00032767924],"domain_scores_gemma":[0.9902492,0.0040555354,0.00079220487,0.00055214064,0.0038553164,0.0004956007],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.002940859,0.001101684,0.0008815011,0.00085520773,0.002371417,0.0021281717,0.0028368444,0.015159006,0.061472327],"category_scores_gemma":[0.023703309,0.0007175044,0.0017337534,0.00077396806,0.0022801189,0.0029992228,0.0015510139,0.011209402,0.034726497],"study_design_candidate":"not_applicable","study_design_consensus":"not_applicable","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000035125828,0.000007494414,0.000063224325,0.00005562717,0.000005408423,0.00013934054,0.00006578498,0.000034877583,0.0001724289,0.0014844271,0.9963322,0.0016040973],"study_design_scores_gemma":[0.000059784994,0.000024232591,0.0007584821,0.00014164535,0.0000144585065,0.00038171097,0.00015509177,0.00021129705,0.0011687921,0.003199343,0.99385107,0.000034090266],"about_ca_topic_score_codex":0.028873038,"about_ca_topic_score_gemma":0.022756346,"teacher_disagreement_score":0.061472327,"about_ca_system_score_codex":0.0031510885,"about_ca_system_score_gemma":0.0028409855,"threshold_uncertainty_score":0.20564544},"labels":[],"label_agreement":null},{"id":"W2072921517","doi":"10.1103/physrevb.65.085106","title":"Mode matching for second-harmonic generation in photonic crystal waveguides","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":115,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Photonic crystal; Second-harmonic generation; Optics; Planar; Harmonic; Energy conversion efficiency; Reflection (computer programming); Materials science; Optoelectronics; Specular reflection; Photonics; Nonlinear optics; Quality (philosophy); Physics; Quantum mechanics","score_opus":0.029730788358252692,"score_gpt":0.3176186677848948,"score_spread":0.28788787942664207,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2072921517","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.82523906,0.0009168447,0.15500747,0.00062975776,0.000057961563,0.00006217864,0.000134619,0.00027136377,0.017680788],"genre_scores_gemma":[0.98797774,0.0003513645,0.009986983,0.00003146745,0.000012886141,0.000041990283,0.000035215668,0.00003163737,0.0015306964],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99979717,0.000048467744,0.000003979886,0.000025168796,0.000089312445,0.000036049096],"domain_scores_gemma":[0.9997665,0.0001236512,0.000047426915,0.000029095192,0.00002092435,0.000012298056],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00035418826,0.0003875515,0.00044933363,0.00017701565,0.0003398586,0.0008167265,0.0003847076,0.0005638277,0.001381464],"category_scores_gemma":[0.0008445853,0.0002547877,0.00031277383,0.00028096107,0.00062530674,0.0005683952,0.0004181837,0.00038249002,0.00030448235],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027002388,0.00012976216,0.00069405994,0.00024260273,0.000034304943,0.00020696581,0.00010166381,0.2353978,0.4808368,0.26996917,0.00087832083,0.011238592],"study_design_scores_gemma":[0.00008023654,0.00008975523,0.00040591584,0.00000956057,0.000013020553,0.00009448659,0.000026337682,0.9085952,0.057351273,0.032118037,0.0011882356,0.000027964323],"about_ca_topic_score_codex":0.00079633034,"about_ca_topic_score_gemma":0.0007321795,"teacher_disagreement_score":0.001381464,"about_ca_system_score_codex":0.0009653015,"about_ca_system_score_gemma":0.00040534072,"threshold_uncertainty_score":0.0070037246},"labels":[],"label_agreement":null},{"id":"W2073447575","doi":"10.1103/physrevb.62.1623","title":"Bilayer growth in the initial stages of Mg epitaxy on Mo(001)","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Metal and Thin Film Mechanics","field":"Engineering","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Lakehead University","funders":"","keywords":"Bilayer; Epitaxy; Auger electron spectroscopy; Electron diffraction; Materials science; Substrate (aquarium); Low-energy electron diffraction; Crystallography; Island growth; Analytical Chemistry (journal); Thin film; Reflection high-energy electron diffraction; Diffraction; Layer (electronics); Condensed matter physics; Chemistry; Nanotechnology; Optics; Physics","score_opus":0.02107538627775022,"score_gpt":0.2846742118608464,"score_spread":0.26359882558309616,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2073447575","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99917334,0.0002180038,0.000158945,0.000010030115,0.0000018509118,0.0000028862498,0.000056334426,0.000008937864,0.00036963733],"genre_scores_gemma":[0.998384,0.000300654,0.000650722,0.000007708046,0.0000022090749,0.0000053327753,0.00011512618,0.000010486213,0.0005237077],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999212,0.0000060238285,0.000002837012,0.000014172945,0.00002545754,0.000030263163],"domain_scores_gemma":[0.99990296,0.000022493317,0.00003163381,0.000008872542,0.000020300196,0.0000138061405],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000071131166,0.00017672795,0.00018232522,0.00013600702,0.0002931732,0.00027228903,0.00016960762,0.00016862107,0.00068793114],"category_scores_gemma":[0.00023076532,0.00017090896,0.00011758616,0.00013961982,0.00014109658,0.0002644614,0.0002710409,0.00028431864,0.00015722969],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008961791,0.000008261025,0.0013645898,0.00005244354,0.0000061220535,0.00007343169,0.00007334169,0.00018277278,0.99724066,0.00011203479,0.000028028204,0.0007687305],"study_design_scores_gemma":[0.000012003,0.00015831721,0.017675193,0.000011879579,0.000013230149,0.00011765775,0.000088592875,0.0020731199,0.978462,0.000052935087,0.0013274043,0.000007658951],"about_ca_topic_score_codex":0.0026614643,"about_ca_topic_score_gemma":0.004404922,"teacher_disagreement_score":0.0026614643,"about_ca_system_score_codex":0.00029767764,"about_ca_system_score_gemma":0.00012099447,"threshold_uncertainty_score":0.005291939},"labels":[],"label_agreement":null},{"id":"W2073596129","doi":"10.1103/physrevb.67.184407","title":"Spin stiffness of stacked triangular antiferromagnets","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Monte Carlo method; Condensed matter physics; Histogram; Stiffness; Universality (dynamical systems); Antiferromagnetism; Statistical physics; Spin (aerodynamics); Renormalization group; Materials science; Physics; Mathematics; Thermodynamics; Quantum mechanics; Computer science; Statistics; Artificial intelligence","score_opus":0.016498362670463552,"score_gpt":0.3049980751753389,"score_spread":0.2884997125048753,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2073596129","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9948272,0.000074768344,0.0031376071,0.00006283937,0.000015233181,0.0000049146233,0.000016559115,0.00004514002,0.0018157405],"genre_scores_gemma":[0.9988165,0.000033385426,0.00082217954,0.000009896999,0.0000059426716,0.000006318718,0.000018819248,0.00000681601,0.0002802262],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99985087,0.000032812255,0.000007003924,0.00002204716,0.000037454087,0.000049830673],"domain_scores_gemma":[0.99935013,0.00027748075,0.00012296211,0.00007497259,0.000065768385,0.000108667686],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00031777864,0.00029788545,0.00048202288,0.0007050964,0.00076566427,0.00079109083,0.0006827234,0.0006822135,0.00196257],"category_scores_gemma":[0.0010675417,0.0002684621,0.00026592915,0.0005205207,0.0011183429,0.0007701567,0.0007112212,0.00044531372,0.00014646466],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010810131,0.00032886764,0.011172501,0.000455671,0.00024146016,0.0018337448,0.0007057947,0.51312006,0.22157262,0.23595159,0.001569296,0.011967442],"study_design_scores_gemma":[0.0000514573,0.00018492178,0.0034117284,0.000019349265,0.000037168145,0.00018876028,0.00016959086,0.9502941,0.019728847,0.025512671,0.00033151818,0.000069889946],"about_ca_topic_score_codex":0.001374506,"about_ca_topic_score_gemma":0.0019046465,"teacher_disagreement_score":0.00196257,"about_ca_system_score_codex":0.00042004228,"about_ca_system_score_gemma":0.00031444366,"threshold_uncertainty_score":0.0065654516},"labels":[],"label_agreement":null},{"id":"W2073821509","doi":"10.1103/physrevb.67.184102","title":"Molecular-dynamics study of ablation of solids under femtosecond laser pulses","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Laser Material Processing Techniques","field":"Engineering","cited_by":320,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"","keywords":"Fluence; Femtosecond; Materials science; Spallation; Laser; Ablation; Plasma; Atomic physics; Laser ablation; Relaxation (psychology); Vaporization; Molecular dynamics; Molecular physics; Optics; Physics; Thermodynamics; Neutron; Nuclear physics","score_opus":0.011007949121481703,"score_gpt":0.2817836271315573,"score_spread":0.2707756780100756,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2073821509","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9921463,0.00020956673,0.0041158334,0.00018608454,0.000010487144,0.000018482464,0.00010636939,0.000044464796,0.0031624371],"genre_scores_gemma":[0.99706984,0.00016082935,0.001809263,0.000019103485,0.000004551752,0.000022148894,0.00010772343,0.00000935526,0.0007972013],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999386,0.000006425238,0.0000016928852,0.0000108838685,0.000021374466,0.000021022064],"domain_scores_gemma":[0.9998833,0.00005129747,0.000019783049,0.000007147358,0.000019544927,0.000018935138],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010171942,0.00021169434,0.0004072566,0.00021973184,0.0005587994,0.0003759821,0.0003791965,0.00057429797,0.0012584584],"category_scores_gemma":[0.00030720312,0.00018237653,0.00034420006,0.0002594475,0.0004608896,0.0005181896,0.00022878638,0.00054037664,0.00010679129],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025534382,0.0002145313,0.0054021883,0.000121363446,0.00008601723,0.0007770613,0.00033943861,0.850628,0.11389487,0.022678338,0.00068617484,0.0049165795],"study_design_scores_gemma":[0.000026506796,0.00006538191,0.0017580437,0.0000042147376,0.0000065569384,0.00004169973,0.000034567885,0.988598,0.008101315,0.0009128223,0.00043738153,0.000013613944],"about_ca_topic_score_codex":0.006857095,"about_ca_topic_score_gemma":0.003306358,"teacher_disagreement_score":0.006857095,"about_ca_system_score_codex":0.00090967724,"about_ca_system_score_gemma":0.0005195908,"threshold_uncertainty_score":0.013634384},"labels":[],"label_agreement":null},{"id":"W2074023429","doi":"10.1103/physrevb.66.125407","title":"Sputtering from ion-beam-roughened Cu surfaces","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ion-surface interactions and analysis","field":"Engineering","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Sputtering; Materials science; Ion; Surface finish; Atomic physics; Surface roughness; Scanning electron microscope; Yield (engineering); Anisotropy; Morphology (biology); Molecular physics; Optics; Thin film; Physics; Nanotechnology; Composite material","score_opus":0.014232940685050191,"score_gpt":0.25628995537834603,"score_spread":0.24205701469329585,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2074023429","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.95729536,0.005000098,0.030365111,0.000051756288,0.000047611156,0.00006376961,0.0002647069,0.00022680504,0.006684731],"genre_scores_gemma":[0.9850189,0.002982933,0.01001255,0.000013986372,0.000012792043,0.000035225035,0.0003236705,0.00004141501,0.0015585519],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996604,0.000030010977,0.000011156019,0.00006254103,0.00017375972,0.00006211549],"domain_scores_gemma":[0.99981445,0.00007260324,0.000025815392,0.000034064884,0.00004630443,0.0000066962425],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003205824,0.00055537827,0.00082320103,0.0005984457,0.0005442174,0.00045368192,0.00084587507,0.00041696485,0.00095058046],"category_scores_gemma":[0.0007532297,0.00030552596,0.00045887002,0.00063702394,0.00054727733,0.0003378003,0.0003621132,0.00036887525,0.00021215301],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020930242,0.00005280147,0.002705029,0.0015783097,0.00014673623,0.0008347602,0.00030986188,0.060572665,0.9051607,0.006965509,0.0006899535,0.020774208],"study_design_scores_gemma":[0.000018494096,0.00027991578,0.008476288,0.000035420067,0.0000673327,0.0005410708,0.000115626484,0.09092833,0.8925394,0.0014167778,0.0055413237,0.00004012039],"about_ca_topic_score_codex":0.002685489,"about_ca_topic_score_gemma":0.0026394238,"teacher_disagreement_score":0.002685489,"about_ca_system_score_codex":0.0010007918,"about_ca_system_score_gemma":0.00026622697,"threshold_uncertainty_score":0.0072612762},"labels":[],"label_agreement":null},{"id":"W2074374165","doi":"10.1103/physrevb.68.245415","title":"Electronic excitations and tunneling spectra of metallic nanograins","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Quantum tunnelling; Excited state; Condensed matter physics; Relaxation (psychology); Atomic physics; Excitation; Quasiparticle; Electronic structure; Population; Physics; Chemistry; Materials science; Superconductivity; Quantum mechanics","score_opus":0.00934722414977803,"score_gpt":0.270838741027404,"score_spread":0.261491516877626,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2074374165","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99384695,0.00072715234,0.003759982,0.000036891302,0.000006494981,0.000003793268,0.00003688694,0.000029742416,0.0015520202],"genre_scores_gemma":[0.9985337,0.00021880017,0.0006908277,0.00000979256,0.0000024099968,0.000003551108,0.000029623754,0.000004243385,0.0005070338],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999758,0.0000037968964,7.549853e-7,0.000006857657,0.000009062999,0.0000037573418],"domain_scores_gemma":[0.9999192,0.000040250667,0.000016792916,0.0000059680415,0.000011520467,0.0000062881613],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007942609,0.00009031191,0.00007100992,0.0002859696,0.00009408119,0.00015799345,0.00012217494,0.00019089997,0.0006939096],"category_scores_gemma":[0.0002158146,0.0000697141,0.000064489424,0.00015765648,0.00020202096,0.00020050953,0.00009368602,0.00014757861,0.000059920207],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002355494,0.00006426936,0.002004862,0.00021705998,0.000021345493,0.00024027289,0.0002432487,0.013495922,0.9506718,0.019476602,0.0002594352,0.013069779],"study_design_scores_gemma":[0.000046561945,0.0005160223,0.057558052,0.00005438745,0.000042751442,0.00078907225,0.00032534893,0.24990004,0.6631321,0.023027854,0.0045618135,0.000045995526],"about_ca_topic_score_codex":0.00016116639,"about_ca_topic_score_gemma":0.0001580712,"teacher_disagreement_score":0.0006939096,"about_ca_system_score_codex":0.0001472028,"about_ca_system_score_gemma":0.000034028064,"threshold_uncertainty_score":0.0023213625},"labels":[],"label_agreement":null},{"id":"W2074411059","doi":"10.1103/physrevb.67.054415","title":"Monte Carlo study of an extended three-state Potts model on the triangular lattice","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Potts model; Monte Carlo method; Antiferromagnetism; Ferromagnetism; Condensed matter physics; Phase diagram; Hexagonal lattice; Physics; Lattice (music); Hamiltonian (control theory); Quantum Monte Carlo; Monte Carlo method in statistical physics; Ising model; Hybrid Monte Carlo; Statistical physics; Mathematics; Phase (matter); Quantum mechanics; Markov chain Monte Carlo","score_opus":0.018412927029374526,"score_gpt":0.29889322139335867,"score_spread":0.28048029436398414,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2074411059","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9791094,0.00033512674,0.014413759,0.00054066593,0.00005074187,0.000050793675,0.00019787795,0.00011613091,0.0051853936],"genre_scores_gemma":[0.9936433,0.000089011504,0.005076976,0.00005783203,0.000023098695,0.00006241724,0.0001442412,0.000027871754,0.0008752703],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9996929,0.00012791753,0.000013456717,0.000031846048,0.000050499835,0.00008336305],"domain_scores_gemma":[0.9967722,0.0020925074,0.00029631247,0.00019730798,0.0002977089,0.00034392258],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012889373,0.00044631114,0.0013564064,0.0008667198,0.0014020577,0.0012940315,0.0015684203,0.0012868384,0.0032799386],"category_scores_gemma":[0.0028042253,0.0005104029,0.0007803526,0.0007869975,0.0019603998,0.0014605868,0.00073910726,0.0013488041,0.00014655673],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000514084,0.00030944168,0.0050778277,0.00012836824,0.00013014501,0.0007714357,0.00020196932,0.8528546,0.0023526484,0.13390791,0.0014890431,0.002262425],"study_design_scores_gemma":[0.000053503474,0.000028398063,0.0003147331,0.0000061765422,0.000014401707,0.000021863607,0.00001944504,0.9924764,0.00022851335,0.0067307604,0.00009459478,0.000011165496],"about_ca_topic_score_codex":0.013605014,"about_ca_topic_score_gemma":0.0140944375,"teacher_disagreement_score":0.013605014,"about_ca_system_score_codex":0.0012549417,"about_ca_system_score_gemma":0.0013149744,"threshold_uncertainty_score":0.027051687},"labels":[],"label_agreement":null},{"id":"W2075492270","doi":"10.1103/physrevb.67.081202","title":"Empirical tight-binding model for the electronic structure of dilute GaNAs alloys","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":47,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Polytechnique Montréal","funders":"","keywords":"Brillouin zone; Electronic band structure; Electronic structure; Tight binding; Condensed matter physics; Parametrization (atmospheric modeling); Conduction band; Heterojunction; Physics; Materials science; Quantum mechanics; Electron","score_opus":0.02403344670090513,"score_gpt":0.33301910128877044,"score_spread":0.3089856545878653,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2075492270","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.46304646,0.0015866132,0.48257867,0.0015888793,0.00013188858,0.00016270137,0.0007598158,0.00063597003,0.049509116],"genre_scores_gemma":[0.9491394,0.0008127846,0.030333046,0.00033126224,0.000057621095,0.00032168993,0.00041983917,0.00011862521,0.018465724],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9996586,0.00010583619,0.00001252315,0.000041396986,0.00010340541,0.00007817965],"domain_scores_gemma":[0.9997018,0.00010566105,0.000029032053,0.00006172319,0.00006404487,0.00003771998],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00094266084,0.00064788247,0.0010959285,0.0010252715,0.0010914485,0.0015556255,0.0033319548,0.0018450517,0.0036185603],"category_scores_gemma":[0.0013964031,0.00060305634,0.00077569624,0.001017032,0.001757173,0.0017173518,0.00089502236,0.001016797,0.0008058901],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000043386153,0.00005130771,0.00038315012,0.000035918303,0.000022079907,0.00010202657,0.00006344538,0.89043677,0.0012565614,0.10466319,0.00057133375,0.0023708704],"study_design_scores_gemma":[0.000012291278,0.000013034791,0.00011572786,0.0000052903465,0.0000056630674,0.000016153144,0.00001754287,0.981652,0.00010118763,0.017739788,0.00031443007,0.0000069291846],"about_ca_topic_score_codex":0.011705575,"about_ca_topic_score_gemma":0.009096853,"teacher_disagreement_score":0.011705575,"about_ca_system_score_codex":0.00126906,"about_ca_system_score_gemma":0.00086393696,"threshold_uncertainty_score":0.023274899},"labels":[],"label_agreement":null},{"id":"W2075837736","doi":"10.1103/physrevb.67.014208","title":"Phenomenological model of anisotropic microstructures in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>a</mml:mi><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">As</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">S</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>chalcogenide glass","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Phase-change materials and chalcogenides","field":"Materials Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Phenomenological model; Anisotropy; Materials science; Amorphous solid; Excited state; Physics; Condensed matter physics; Crystallography; Optics; Atomic physics; Chemistry","score_opus":0.02232331948431176,"score_gpt":0.2573703971867538,"score_spread":0.23504707770244204,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2075837736","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.34523317,0.0019459131,0.3524051,0.0058123637,0.0003846505,0.00027059054,0.0013028906,0.0008971373,0.29174826],"genre_scores_gemma":[0.93322307,0.0009529183,0.023623243,0.00038749984,0.00007865782,0.000166194,0.00031204292,0.0001734822,0.041082915],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999124,0.000018396155,0.0000025098527,0.00001580239,0.00002888488,0.000022107366],"domain_scores_gemma":[0.99986064,0.000034042423,0.000018016628,0.000030337991,0.00003207801,0.000024947665],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002225863,0.00028963076,0.00030255283,0.0004761007,0.00077244104,0.0012396814,0.0010999123,0.0010427451,0.010817316],"category_scores_gemma":[0.0003956844,0.00046118186,0.00053917326,0.00029939445,0.0012114005,0.0009918942,0.0003150426,0.00078194187,0.0012040288],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00005901344,0.00006776702,0.00056179316,0.00008235995,0.000015823956,0.00029018335,0.00017564878,0.073059276,0.021599742,0.89824957,0.003436156,0.002402622],"study_design_scores_gemma":[0.00009464138,0.00008431606,0.0025596577,0.000036360154,0.000022800521,0.00044415408,0.00020088462,0.66387534,0.0044013862,0.31470668,0.013512914,0.00006081015],"about_ca_topic_score_codex":0.005660746,"about_ca_topic_score_gemma":0.0052775,"teacher_disagreement_score":0.010817316,"about_ca_system_score_codex":0.0010981597,"about_ca_system_score_gemma":0.0006643292,"threshold_uncertainty_score":0.03618753},"labels":[],"label_agreement":null},{"id":"W2077137667","doi":"10.1103/physrevb.65.104104","title":"Symmetry-general least-squares extraction of elastic data for strained materials from<i>ab initio</i>calculations of stress","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":1329,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada","funders":"","keywords":"Ab initio; Hydrostatic pressure; Ab initio quantum chemistry methods; Elastic modulus; Materials science; Symmetry (geometry); Elastic energy; Triclinic crystal system; Physics; Thermodynamics; Quantum mechanics; Mathematics; Geometry","score_opus":0.04612410442990759,"score_gpt":0.30718964319126413,"score_spread":0.2610655387613565,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2077137667","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.051161725,0.00012509992,0.9353768,0.00012668855,0.00003743621,0.00007921045,0.0012626374,0.002060523,0.009769812],"genre_scores_gemma":[0.37294593,0.00042739577,0.614623,0.000091960464,0.000022629913,0.0005025696,0.0029202187,0.0017476281,0.006718764],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997038,0.000060605606,0.000017018923,0.000038065235,0.00015660106,0.000023878729],"domain_scores_gemma":[0.99946696,0.00015266553,0.000045555105,0.00017676051,0.00014209053,0.000015999567],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006721879,0.0009360344,0.0005725845,0.0010852163,0.0005084019,0.0007128219,0.0013315286,0.0005913529,0.00486457],"category_scores_gemma":[0.0017237951,0.0008097872,0.00074693706,0.0011114145,0.0003824831,0.0010578844,0.00056906004,0.00091916736,0.0014779592],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010896179,0.00012094465,0.0023100397,0.00083281513,0.00013061879,0.00031342203,0.00030253266,0.6352935,0.12536311,0.11441465,0.0066561797,0.114153326],"study_design_scores_gemma":[0.0000085526135,0.000021869166,0.00061316846,0.000019649382,0.000008480684,0.00005759176,0.000032258176,0.96007574,0.020782912,0.015082303,0.0032731676,0.000024338397],"about_ca_topic_score_codex":0.0013975718,"about_ca_topic_score_gemma":0.002334504,"teacher_disagreement_score":0.00486457,"about_ca_system_score_codex":0.00047049127,"about_ca_system_score_gemma":0.0012355155,"threshold_uncertainty_score":0.016273618},"labels":[],"label_agreement":null},{"id":"W2077855827","doi":"10.1103/physrevb.61.6713","title":"Implications of finite-size and surface effects on nanosize intercalation materials","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Surface and Thin Film Phenomena","field":"Physics and Astronomy","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Dalhousie University","funders":"","keywords":"Intercalation (chemistry); Materials science; Grain size; Monte Carlo method; Chemical composition; Chemical physics; Lattice (music); Surface energy; Lithium (medication); Thermodynamics; Chemistry; Inorganic chemistry; Physics; Composite material","score_opus":0.008171999923763969,"score_gpt":0.27711324732462167,"score_spread":0.2689412474008577,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2077855827","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98272806,0.0004945525,0.0095505165,0.0007559675,0.00006820972,0.000029125888,0.00012723496,0.00017224021,0.006074083],"genre_scores_gemma":[0.9980794,0.00015830199,0.0012350606,0.00005248329,0.000010738665,0.0000164291,0.000039257782,0.000066912966,0.00034150342],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997265,0.000091716596,0.000012004033,0.000030455607,0.00008867446,0.000050620725],"domain_scores_gemma":[0.9966883,0.0026248042,0.00019217475,0.00014988567,0.0002273011,0.00011757527],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007709434,0.00048516135,0.0006228004,0.0004368842,0.0008220894,0.0009840417,0.0008598353,0.001086735,0.002634712],"category_scores_gemma":[0.0059931786,0.00040633808,0.00051673065,0.0003156884,0.0012582786,0.0012134209,0.0007608214,0.00091224984,0.00011688478],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00040817037,0.00020506137,0.0061976877,0.00021757919,0.000071489296,0.00045559928,0.0002050766,0.90380955,0.0467,0.03606622,0.00049444416,0.005169216],"study_design_scores_gemma":[0.000069988884,0.0001679521,0.0017961756,0.000015430483,0.000044256427,0.00005698957,0.000059784048,0.970979,0.017665014,0.008735676,0.00038173096,0.000027924318],"about_ca_topic_score_codex":0.005398089,"about_ca_topic_score_gemma":0.0042535933,"teacher_disagreement_score":0.005398089,"about_ca_system_score_codex":0.0010674807,"about_ca_system_score_gemma":0.0006859828,"threshold_uncertainty_score":0.010733366},"labels":[],"label_agreement":null},{"id":"W2078651417","doi":"10.1103/physrevb.62.12113","title":"Transmission through two-dimensional tight-binding lattices","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Tight binding; Transmission (telecommunications); Matrix (chemical analysis); Matrix algebra; Computer science; Algebra over a field; Physics; Statistical physics; Mathematics; Pure mathematics; Quantum mechanics; Materials science; Electronic structure; Eigenvalues and eigenvectors; Telecommunications","score_opus":0.014418022051325887,"score_gpt":0.3230431392228649,"score_spread":0.308625117171539,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2078651417","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.03314861,0.00095310056,0.9141834,0.000448025,0.00021157996,0.00013063785,0.00012601382,0.00027734585,0.050521325],"genre_scores_gemma":[0.6359274,0.0026297956,0.3366984,0.00042886607,0.00012975044,0.0007279079,0.00023073364,0.0003164882,0.022910664],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9990006,0.00037005043,0.000044417804,0.00008693599,0.00036181448,0.00013620147],"domain_scores_gemma":[0.99926466,0.00033088616,0.000060886763,0.00019743253,0.000085190455,0.00006100277],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0013168555,0.0006228176,0.0009829258,0.0012220435,0.0015871405,0.0026121133,0.0014664151,0.0010788665,0.008445762],"category_scores_gemma":[0.002091159,0.0006941632,0.0007063373,0.0009739534,0.0020199297,0.0029263466,0.0025489235,0.002143396,0.0013687009],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000012942164,0.00001749973,0.00004305161,0.000055982317,0.00000691934,0.00006017027,0.00009335241,0.013359822,0.0028803188,0.97877115,0.00055166794,0.004147125],"study_design_scores_gemma":[0.000024088082,0.000049435053,0.00007467519,0.00006139386,0.000008330861,0.00021245226,0.00012940263,0.24598731,0.0041209226,0.7427909,0.0064880354,0.000053083793],"about_ca_topic_score_codex":0.00084030424,"about_ca_topic_score_gemma":0.0007315553,"teacher_disagreement_score":0.008445762,"about_ca_system_score_codex":0.001190445,"about_ca_system_score_gemma":0.0008545353,"threshold_uncertainty_score":0.028253913},"labels":[],"label_agreement":null},{"id":"W2079125872","doi":"10.1103/physrevb.66.174515","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>d</mml:mi><mml:mo>+</mml:mo><mml:mi>i</mml:mi><mml:mi>s</mml:mi></mml:math>versus<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi>d</mml:mi><mml:mo>+</mml:mo><mml:mi>i</mml:mi><mml:mi>d</mml:mi></mml:mrow><mml:mrow><mml:mo>′</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>time reversal symmetry breaking states in finite size systems","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; D-Wave Systems (Canada)","funders":"","keywords":"Physics","score_opus":0.015807027463961308,"score_gpt":0.2439896771410184,"score_spread":0.2281826496770571,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2079125872","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.48334944,0.00022807161,0.15588446,0.00217706,0.0002549214,0.00018937197,0.0050786682,0.005291725,0.3475464],"genre_scores_gemma":[0.85595536,0.00033262593,0.07680831,0.0002838634,0.00006604747,0.00029259778,0.0027633405,0.0028019492,0.060696024],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99992836,0.000016474232,0.000002526933,0.0000071953154,0.00003309334,0.000012387276],"domain_scores_gemma":[0.999814,0.00006397349,0.000019206072,0.00004947002,0.00003333998,0.000019993071],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002325307,0.0002778039,0.00034943692,0.00037328195,0.0005871357,0.0011469459,0.0011228294,0.0005056529,0.04842561],"category_scores_gemma":[0.0005670257,0.00022907996,0.00031180945,0.00052675116,0.0005286502,0.0011880181,0.00032984064,0.0005484113,0.00360542],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038056474,0.00019610404,0.0026270326,0.0004757602,0.00006461893,0.00061474653,0.0006579766,0.07740352,0.04148384,0.74638,0.0850295,0.044686355],"study_design_scores_gemma":[0.00022443276,0.0000912141,0.002094208,0.000038846814,0.000019634388,0.0001048361,0.00019080761,0.84059554,0.028430253,0.08783914,0.040326163,0.000044905948],"about_ca_topic_score_codex":0.0039949906,"about_ca_topic_score_gemma":0.007836705,"teacher_disagreement_score":0.04842561,"about_ca_system_score_codex":0.00086323346,"about_ca_system_score_gemma":0.0005035263,"threshold_uncertainty_score":0.16199982},"labels":[],"label_agreement":null},{"id":"W2079197929","doi":"10.1103/physrevb.66.134413","title":"Magnetism of layered cobalt oxides investigated by muon spin rotation and relaxation","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":120,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan; TRIUMF; University of British Columbia; Canadian Institute for Advanced Research","funders":"TRIUMF; Natural Sciences and Engineering Research Council of Canada; Canadian Institute for Advanced Research","keywords":"Muon spin spectroscopy; Physics; Condensed matter physics; Ferrimagnetism; Magnetism; Muon; Valence (chemistry); Relaxation (psychology); Crystallography; Magnetization; Magnetic field; Superconductivity; Particle physics; Chemistry; Quantum mechanics","score_opus":0.014514305637730665,"score_gpt":0.26394166897520327,"score_spread":0.24942736333747262,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2079197929","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99919873,0.000099095094,0.00019686938,0.000013537946,0.0000025582942,0.0000025472464,0.000074194526,0.00001535596,0.00039716347],"genre_scores_gemma":[0.99916553,0.00008188734,0.00021021895,0.0000068803683,0.0000019000557,0.0000049502264,0.00012011179,0.000009321219,0.00039927108],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999243,0.00000530447,0.0000057515595,0.000020546313,0.000022442415,0.00002176947],"domain_scores_gemma":[0.9998809,0.000016666363,0.000037179296,0.000008838533,0.000038367434,0.000017961784],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007399703,0.00020981347,0.00019265062,0.00023033097,0.00022428867,0.00046155966,0.00028149545,0.00019462894,0.0008111877],"category_scores_gemma":[0.00028589382,0.0002072239,0.00012468809,0.0002506423,0.00027469054,0.000175041,0.00021163317,0.00030010034,0.00014343004],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000117737894,0.000009597612,0.0014378028,0.000035084453,0.000010170099,0.00006232045,0.00006459809,0.000104600076,0.9975587,0.00007174135,0.000018090748,0.0005095376],"study_design_scores_gemma":[0.000022647868,0.00019327176,0.025507933,0.000013964821,0.000051201318,0.00017525977,0.00022246118,0.002384357,0.9703794,0.00006403071,0.00097235106,0.000013025039],"about_ca_topic_score_codex":0.004730084,"about_ca_topic_score_gemma":0.0045139543,"teacher_disagreement_score":0.004730084,"about_ca_system_score_codex":0.00039276862,"about_ca_system_score_gemma":0.00019461875,"threshold_uncertainty_score":0.0094050765},"labels":[],"label_agreement":null},{"id":"W2079800721","doi":"10.1103/physrevb.68.085305","title":"Off-resonant absorption in bound-to-continuum<i>p</i>-type<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">G</mml:mi><mml:mi mathvariant=\"normal\">a</mml:mi><mml:mi mathvariant=\"normal\">A</mml:mi><mml:mi mathvariant=\"normal\">s</mml:mi><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">A</mml:mi><mml:mi mathvariant=\"normal\">l</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">As</mml:mi></mml:math>quantum wells: Overcoming absorption saturation with doping","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Brillouin zone; Physics; Wave vector; Wave function; Saturation (graph theory); Upper and lower bounds; Atomic physics; Condensed matter physics; Optics; Mathematical analysis; Combinatorics; Mathematics","score_opus":0.014428871633585838,"score_gpt":0.24566040300964714,"score_spread":0.2312315313760613,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2079800721","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.12170938,0.0015270106,0.11523348,0.0044404906,0.0026803068,0.0001307342,0.004299877,0.014055528,0.7359231],"genre_scores_gemma":[0.74105525,0.0009059215,0.028394146,0.0028520864,0.0001709355,0.0002502705,0.0059491866,0.0065065995,0.21391572],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99912983,0.000069150025,0.000017397042,0.00028115613,0.00027406495,0.00022841444],"domain_scores_gemma":[0.9995098,0.00015695007,0.000041145322,0.0001471304,0.000085169355,0.000059851365],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00055330526,0.00076900714,0.0006197072,0.0007635637,0.0018663167,0.0024440945,0.0021994151,0.0018197855,0.17131653],"category_scores_gemma":[0.0011052928,0.0007960257,0.00067559845,0.0011576528,0.0008954172,0.0025367434,0.0021317555,0.0028769865,0.03146208],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0018701021,0.0009236265,0.0062877466,0.0019216227,0.00021946424,0.00269515,0.0016836288,0.009021895,0.3035282,0.2395074,0.3394618,0.09287938],"study_design_scores_gemma":[0.0003538809,0.00041846882,0.01153394,0.0004284095,0.00013077745,0.002052725,0.0013394005,0.101589896,0.39569178,0.08785767,0.3982543,0.0003487909],"about_ca_topic_score_codex":0.0017044806,"about_ca_topic_score_gemma":0.0026749072,"teacher_disagreement_score":0.17131653,"about_ca_system_score_codex":0.0018854189,"about_ca_system_score_gemma":0.00061805686,"threshold_uncertainty_score":0.57311094},"labels":[],"label_agreement":null},{"id":"W2080392531","doi":"10.1103/physrevb.67.155404","title":"Raman scattering in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mn>60</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mn>48</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">N</mml:mi></mml:mrow><mml:mrow><mml:mn>12</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>aza-fullerene:  First-principles study","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Fullerene Chemistry and Applications","field":"Chemistry","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Raman spectroscopy; Ab initio; Degenerate energy levels; Raman scattering; Density functional theory; Physics; Basis (linear algebra); Crystallography; Chemistry; Quantum mechanics; Mathematics; Geometry","score_opus":0.019713563707797324,"score_gpt":0.2541576108009439,"score_spread":0.2344440470931466,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2080392531","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.012387043,0.0010044265,0.20305838,0.0069004227,0.0042300657,0.0007465698,0.11784911,0.09026214,0.5635618],"genre_scores_gemma":[0.036672194,0.0029289057,0.17007865,0.003178301,0.0004037103,0.0012865493,0.19632167,0.05083005,0.5383],"study_design_codex":"not_applicable","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9981329,0.00018796446,0.00013205239,0.00035653485,0.0010225821,0.00016804108],"domain_scores_gemma":[0.9978617,0.0004828922,0.00010232509,0.0006349817,0.00079694245,0.00012111975],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0017438876,0.0023333202,0.001129648,0.002414539,0.0023403184,0.004808785,0.002882506,0.0023696597,0.2973047],"category_scores_gemma":[0.0039255708,0.00161658,0.0016697708,0.0034560927,0.0006390806,0.0035785728,0.0019617036,0.0036824725,0.23363285],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00029686518,0.0001778666,0.00060825585,0.0004947382,0.00006277498,0.00025532456,0.00033444297,0.0016355326,0.05910489,0.017175972,0.8345446,0.08530862],"study_design_scores_gemma":[0.000051914645,0.000037897807,0.0013157895,0.00008830499,0.000027471477,0.00018471897,0.00019423643,0.003913058,0.07004948,0.0055542253,0.9184589,0.00012393938],"about_ca_topic_score_codex":0.013333289,"about_ca_topic_score_gemma":0.018906584,"teacher_disagreement_score":0.2973047,"about_ca_system_score_codex":0.002965206,"about_ca_system_score_gemma":0.0024721315,"threshold_uncertainty_score":0.99458325},"labels":[],"label_agreement":null},{"id":"W2081706576","doi":"10.1103/physrevb.66.134507","title":"Microwave-induced π-junction transition in a superconductor/quantum dot/superconductor structure","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Condensed matter physics; Superconductivity; Physics; Andreev reflection; Quantum dot; Supercurrent; Omega; Microwave; Photon; Photon energy; Quantum mechanics; Josephson effect","score_opus":0.022177580797927036,"score_gpt":0.2658166663332435,"score_spread":0.2436390855353165,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2081706576","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99540836,0.000048813836,0.0026673954,0.000030115176,0.000011846703,0.0000037151528,0.000014623021,0.000033537774,0.0017815923],"genre_scores_gemma":[0.99834144,0.00002995935,0.0011293329,0.00000748105,0.0000021972505,0.000004325605,0.000010727479,0.000004954617,0.00046960003],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999788,0.0000031192506,0.0000010802378,0.000004792688,0.00000698558,0.000005259187],"domain_scores_gemma":[0.9999604,0.000012155722,0.00000933442,0.0000064032706,0.0000046279597,0.0000070884234],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000050643554,0.00008020387,0.00010576075,0.000096519645,0.00018403938,0.00019042821,0.00024539404,0.00015038905,0.001035437],"category_scores_gemma":[0.000086918284,0.000069967246,0.00009862118,0.0000915029,0.00022936147,0.00014554246,0.0001294121,0.00016880174,0.0001336459],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007922373,0.00006220454,0.0008291712,0.000077886965,0.000015863012,0.00039250997,0.00013906587,0.0033450725,0.96162546,0.030556384,0.00020719449,0.002670033],"study_design_scores_gemma":[0.00007607597,0.00047658253,0.005363868,0.000013810193,0.00004873089,0.0004287037,0.000116038296,0.15758374,0.8234755,0.009804669,0.0025787184,0.000033610097],"about_ca_topic_score_codex":0.00031618238,"about_ca_topic_score_gemma":0.00045682598,"teacher_disagreement_score":0.001035437,"about_ca_system_score_codex":0.00015179793,"about_ca_system_score_gemma":0.00010829392,"threshold_uncertainty_score":0.0034638047},"labels":[],"label_agreement":null},{"id":"W2082103970","doi":"10.1103/physrevb.63.054102","title":"Theoretical description of hole localization in a quartz Al center: The importance of exact electron exchange","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Luminescence Properties of Advanced Materials","field":"Materials Science","cited_by":267,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"","keywords":"Delocalized electron; Physics; Atom (system on chip); Hyperfine structure; Quadrupole; Atomic physics; Center (category theory); Muonium; Density functional theory; Metastability; Impurity; Electron; Spectral line; Cluster (spacecraft); Condensed matter physics; Crystallography; Quantum mechanics; Chemistry","score_opus":0.012801950867222725,"score_gpt":0.2878613914402504,"score_spread":0.27505944057302767,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2082103970","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5795304,0.00088278827,0.35334557,0.0017717432,0.00013130301,0.00010754111,0.00037290098,0.00039160304,0.06346612],"genre_scores_gemma":[0.9794658,0.00031702983,0.0127145015,0.0001831068,0.000040167142,0.00009529462,0.00009340673,0.000071478906,0.0070192246],"study_design_codex":"simulation_or_modeling","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.999879,0.000019166007,0.0000034184682,0.000017696302,0.000045423665,0.000035276367],"domain_scores_gemma":[0.9998721,0.00005989973,0.0000123533355,0.000022888416,0.000020625966,0.000012071522],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00033698892,0.00046378645,0.0006157934,0.0007484637,0.00088342966,0.0009741761,0.002471057,0.0015982753,0.003611949],"category_scores_gemma":[0.0004094679,0.0002513358,0.00048692542,0.00045486604,0.0016401923,0.0011537991,0.00055648945,0.0005303591,0.00040285927],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00005231133,0.00007354531,0.0006715838,0.00012451179,0.000021150063,0.00051657675,0.00022815814,0.49291494,0.007409305,0.49147716,0.0010404818,0.0054703252],"study_design_scores_gemma":[0.000015665539,0.000021016534,0.00021558952,0.0000053705867,0.000004147263,0.00004814014,0.00004369662,0.9484652,0.0005410539,0.05022294,0.00040723337,0.000009903082],"about_ca_topic_score_codex":0.003694606,"about_ca_topic_score_gemma":0.0028713401,"teacher_disagreement_score":0.003694606,"about_ca_system_score_codex":0.0010324464,"about_ca_system_score_gemma":0.00074015715,"threshold_uncertainty_score":0.012083173},"labels":[],"label_agreement":null},{"id":"W2082328659","doi":"10.1103/physrevb.68.180506","title":"Theory of quasiparticle interference patterns in the pseudogap phase of the cuprate superconductors","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":65,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Pseudogap; Quasiparticle; Condensed matter physics; Cuprate; Superconductivity; Physics; Phase (matter); Coherence (philosophical gambling strategy); Interference (communication); Quantum tunnelling; Quantum mechanics; Telecommunications; Computer science","score_opus":0.035360586402389885,"score_gpt":0.32425851395420185,"score_spread":0.288897927551812,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2082328659","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.10839836,0.0037863497,0.83995074,0.001393722,0.0005748879,0.00022132872,0.00025805767,0.0006133959,0.04480322],"genre_scores_gemma":[0.7847007,0.0023629752,0.19959286,0.0005564719,0.0006881619,0.00089593104,0.00024673116,0.00024249533,0.010713711],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9995807,0.00012936075,0.000023911633,0.00003904675,0.00017688045,0.000050177485],"domain_scores_gemma":[0.9991755,0.0003304259,0.00012672023,0.0001426543,0.00013890828,0.000085775006],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008608511,0.0011011652,0.001091148,0.0023946227,0.0010263035,0.0016366949,0.0026206383,0.0014559549,0.002807287],"category_scores_gemma":[0.0018578803,0.0007352382,0.0010045661,0.00091872603,0.0031549793,0.0027428025,0.0008580732,0.0013412482,0.0005373637],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000020298034,0.00003105766,0.0002207673,0.00006900683,0.000013674347,0.00020565926,0.000081729646,0.020043764,0.0029780245,0.9728397,0.00062840484,0.002867863],"study_design_scores_gemma":[0.000023524426,0.000053098927,0.00039754793,0.000033183678,0.000007794596,0.00034408874,0.000035796034,0.38738352,0.001186392,0.60864645,0.0018443537,0.00004424868],"about_ca_topic_score_codex":0.000621681,"about_ca_topic_score_gemma":0.0006333913,"teacher_disagreement_score":0.002807287,"about_ca_system_score_codex":0.00079814903,"about_ca_system_score_gemma":0.0006045535,"threshold_uncertainty_score":0.009391308},"labels":[],"label_agreement":null},{"id":"W2082902633","doi":"10.1103/physrevb.64.125320","title":"Influence of a magnetic field on the current instability in a ballistic field-effect transistor","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Terahertz technology and applications","field":"Engineering","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"","keywords":"Physics; Instability; Magnetic field; Condensed matter physics; Plasma; Waves in plasmas; Electron; Two-stream instability; Electromagnetic electron wave; Electromagnetic radiation; Optics; Mechanics; Quantum mechanics","score_opus":0.008803499305306772,"score_gpt":0.2775394967234098,"score_spread":0.268735997418103,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2082902633","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9854956,0.00071158697,0.0071138376,0.00042253511,0.00005145927,0.000021422587,0.00003145081,0.000088069384,0.0060639763],"genre_scores_gemma":[0.99794203,0.00025555617,0.0011545208,0.000025192488,0.000017170154,0.000010273987,0.000010408227,0.000009472715,0.00057541695],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999447,0.000013123274,0.0000020626137,0.000009894373,0.000016583961,0.000013734671],"domain_scores_gemma":[0.9998474,0.00009384512,0.000025765945,0.0000061445517,0.000010581292,0.000016208603],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014686813,0.00019946572,0.00033077557,0.00023075586,0.0006195132,0.0005794471,0.00023668807,0.00034742232,0.0011237165],"category_scores_gemma":[0.00058307033,0.00015555162,0.00014209705,0.000115908944,0.0005707722,0.0005054474,0.0002904185,0.00018749452,0.00014130014],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011894585,0.00013762877,0.002123444,0.00035441262,0.00006833877,0.0015331132,0.0007310755,0.059159424,0.8703183,0.05261595,0.0009820546,0.010786732],"study_design_scores_gemma":[0.00022085929,0.001355377,0.003274754,0.000040794712,0.000118902884,0.0008801135,0.0002987615,0.75441885,0.21913163,0.01474514,0.005434009,0.00008082084],"about_ca_topic_score_codex":0.0008193377,"about_ca_topic_score_gemma":0.0006992059,"teacher_disagreement_score":0.0011237165,"about_ca_system_score_codex":0.00048851676,"about_ca_system_score_gemma":0.00024164739,"threshold_uncertainty_score":0.003759265},"labels":[],"label_agreement":null},{"id":"W2083007696","doi":"10.1103/physrevb.61.15338","title":"Evidence of ferromagnetically coupled<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Nd</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>ion pairs in weakly doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">N</mml:mi><mml:mi mathvariant=\"normal\">d</mml:mi><mml:mo>:</mml:mo><mml:mi mathvariant=\"normal\">L</mml:mi><mml:mi mathvariant=\"normal\">i</mml:mi><mml:mi mathvariant=\"normal\">Y</mml:mi><mml:mi mathvariant=\"normal\">F</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">N</mml:mi><mml:mi mathvariant=\"normal\">d</mml:mi><mml:mo>:</mml:mo><mml:mi mathvariant=\"normal\">Y</mml:mi><mml:mi mathvariant=\"normal\">V</mml:mi><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>crystals as revealed by high-resolution optical and EPR spectroscopies","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Luminescence Properties of Advanced Materials","field":"Materials Science","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Physics; Electron paramagnetic resonance; Ion; Neodymium; Crystallography; Spectral line; Atomic physics; Nuclear magnetic resonance; Chemistry; Optics; Quantum mechanics","score_opus":0.015320215906677875,"score_gpt":0.2460945192663574,"score_spread":0.23077430335967952,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2083007696","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9210187,0.0013234952,0.0058374493,0.002034771,0.0004224249,0.00005752708,0.0019126738,0.000699612,0.066693366],"genre_scores_gemma":[0.9892681,0.00020856458,0.0011187847,0.00032498338,0.000014103366,0.000029495282,0.00076588924,0.000098399876,0.008171602],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995703,0.00004662218,0.000025193678,0.000117904914,0.00011952637,0.00012051346],"domain_scores_gemma":[0.99959475,0.00008532903,0.00007542839,0.000094199924,0.00008268087,0.00006766537],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002369606,0.00035489822,0.0004655529,0.00042666987,0.0010511976,0.00082697754,0.001262461,0.0011412689,0.019129476],"category_scores_gemma":[0.00081626896,0.00045081464,0.00021356599,0.00044252438,0.00074641337,0.00048658412,0.00081320497,0.0009861558,0.0017227986],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.002155019,0.00012152256,0.0030915341,0.00067026605,0.00014609753,0.0010147631,0.00061425,0.00038874996,0.96367073,0.0063293064,0.015006777,0.006791012],"study_design_scores_gemma":[0.00014421516,0.00042602545,0.015364645,0.00006720021,0.000100790516,0.0011476566,0.00073197443,0.0024941755,0.96600693,0.0013405607,0.012131268,0.000044618377],"about_ca_topic_score_codex":0.0031822883,"about_ca_topic_score_gemma":0.0064792205,"teacher_disagreement_score":0.019129476,"about_ca_system_score_codex":0.0005466361,"about_ca_system_score_gemma":0.00035812875,"threshold_uncertainty_score":0.06399453},"labels":[],"label_agreement":null},{"id":"W2083091919","doi":"10.1103/physrevb.68.245323","title":"Kondo resonance in a quantum dot molecule","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Kondo effect; Quantum dot; Conductance; Resonance (particle physics); Condensed matter physics; Gate voltage; Coupling (piping); Physics; Scattering; Impurity; Molecule; Anderson impurity model; Materials science; Voltage; Quantum mechanics; Transistor","score_opus":0.010207708016303219,"score_gpt":0.2719575647943946,"score_spread":0.26174985677809137,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2083091919","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9678996,0.0004343628,0.014332436,0.0008251248,0.00006281589,0.000023735438,0.000019233317,0.00006529509,0.016337525],"genre_scores_gemma":[0.9949462,0.00022225677,0.0032319361,0.000072383446,0.000014379888,0.000016591419,0.000009507498,0.00001254936,0.0014742372],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998976,0.000020363763,0.0000032305813,0.000023318576,0.000036554866,0.000018945777],"domain_scores_gemma":[0.9998586,0.00007657522,0.000011121516,0.000024911526,0.000012149212,0.000016660048],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022120032,0.00023174167,0.00051270705,0.00027480212,0.0009958654,0.00076832477,0.00044949472,0.000875426,0.0013261511],"category_scores_gemma":[0.00054595637,0.00021007188,0.00033433214,0.0002081433,0.0014427712,0.000930719,0.0005123685,0.000562928,0.0001221923],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000109939945,0.00017035042,0.0006958233,0.00017388599,0.000035194957,0.0012029812,0.00057056354,0.071740456,0.105792746,0.815429,0.0006349552,0.003444225],"study_design_scores_gemma":[0.00013727574,0.00031689287,0.0009494075,0.000036947193,0.000050461258,0.00045438175,0.00020265125,0.8233511,0.035750456,0.13514675,0.0035530566,0.000050576982],"about_ca_topic_score_codex":0.0010358415,"about_ca_topic_score_gemma":0.00091264845,"teacher_disagreement_score":0.0013261511,"about_ca_system_score_codex":0.0006119323,"about_ca_system_score_gemma":0.0003837715,"threshold_uncertainty_score":0.0044398904},"labels":[],"label_agreement":null},{"id":"W2083303022","doi":"10.1103/physrevb.63.100303","title":"Charge-ordering phase transition and order-disorder effects in the Raman spectra of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">NaV</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Raman spectroscopy; Valence (chemistry); Phase transition; Charge (physics); Spectral line; Charge ordering; Raman scattering; Phonon; Order (exchange); Condensed matter physics; Physics; Chemistry; Optics; Quantum mechanics","score_opus":0.01337355450377517,"score_gpt":0.255621615078096,"score_spread":0.24224806057432083,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2083303022","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98559326,0.00037831705,0.002658699,0.00020779399,0.000039802424,0.000010352353,0.00024087128,0.00017361557,0.010697292],"genre_scores_gemma":[0.9957652,0.000096137956,0.00087279576,0.000032520027,0.0000046795735,0.000006628005,0.00016410722,0.000049617156,0.003008284],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998777,0.000012171223,0.0000044234494,0.000027525202,0.000042237178,0.000035996894],"domain_scores_gemma":[0.9997372,0.00010740147,0.000039854833,0.000020078163,0.00006316252,0.00003237954],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014538421,0.0002691356,0.00010957282,0.00052035035,0.00043059074,0.0004760424,0.0005018471,0.00028618128,0.009310611],"category_scores_gemma":[0.0005060838,0.00024512864,0.00011257785,0.00041535933,0.00058287865,0.00034989978,0.00018768321,0.0007755048,0.0006119297],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027737484,0.000109434965,0.001585592,0.00012556546,0.00001626562,0.00019487024,0.00043954593,0.00167048,0.97988796,0.0066036005,0.0015989739,0.007490328],"study_design_scores_gemma":[0.000025535468,0.00013091994,0.014584508,0.000013977532,0.000018013316,0.0001107237,0.00021621455,0.015648767,0.9648878,0.0015269106,0.0027933042,0.00004336482],"about_ca_topic_score_codex":0.003985996,"about_ca_topic_score_gemma":0.0050844224,"teacher_disagreement_score":0.009310611,"about_ca_system_score_codex":0.00030157226,"about_ca_system_score_gemma":0.0002408001,"threshold_uncertainty_score":0.031147063},"labels":[],"label_agreement":null},{"id":"W2083830335","doi":"10.1103/physrevb.68.035317","title":"Experimental study of weak antilocalization effects in a high-mobility<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">In</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ga</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">A</mml:mi><mml:mi mathvariant=\"normal\">s</mml:mi><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">I</mml:mi><mml:mi mathvariant=\"normal\">n</mml:mi><mml:mi mathvariant=\"normal\">P</mml:mi></mml:math>quantum well","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":69,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Magnetoresistance; Weak localization; Condensed matter physics; Scattering; Physics; Magnetic field; Field (mathematics); Spin (aerodynamics); Phase (matter); Quantum mechanics; Mathematics","score_opus":0.011750569665140048,"score_gpt":0.24204003346185515,"score_spread":0.2302894637967151,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2083830335","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97620195,0.001046217,0.0039219465,0.00080501597,0.00025758814,0.000050334205,0.0007329904,0.00045972853,0.016524259],"genre_scores_gemma":[0.99082774,0.00052506523,0.0020122216,0.0001595181,0.000044415065,0.000055588127,0.00031517787,0.00019561291,0.0058646477],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99952245,0.00004666821,0.000017115617,0.00015028464,0.000115190975,0.00014819179],"domain_scores_gemma":[0.9988411,0.00039361342,0.00018396355,0.00019612462,0.00026589716,0.00011936902],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00054642436,0.00046385167,0.0004373907,0.00034486895,0.001066947,0.0009220497,0.0014725835,0.00080455764,0.019031776],"category_scores_gemma":[0.0012331946,0.00040711745,0.00026143272,0.00060913805,0.00076664594,0.0010632459,0.00076143065,0.0012278027,0.0022149454],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011810906,0.00032660225,0.00068171095,0.0005934828,0.000059606675,0.0005808103,0.0005295709,0.0009413059,0.97895604,0.005267661,0.0062352605,0.004646786],"study_design_scores_gemma":[0.00013110564,0.0009188589,0.0031031193,0.000051818748,0.000052830757,0.0002109964,0.00042650662,0.006935144,0.9794006,0.0007614717,0.007949548,0.000058020134],"about_ca_topic_score_codex":0.0018912905,"about_ca_topic_score_gemma":0.0013484765,"teacher_disagreement_score":0.019031776,"about_ca_system_score_codex":0.00090425037,"about_ca_system_score_gemma":0.00046758758,"threshold_uncertainty_score":0.063667595},"labels":[],"label_agreement":null},{"id":"W2084860286","doi":"10.1103/physrevb.68.165348","title":"All-optical injection and control of spin and electrical currents in quantum wells","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada; Defense Advanced Research Projects Agency","keywords":"Physics; Condensed matter physics; Spin (aerodynamics); Photon; Quantum well; Quantum; Spin polarization; Quantum wire; Band gap; Quantum mechanics; Electron","score_opus":0.008384019149055259,"score_gpt":0.27968185161496195,"score_spread":0.2712978324659067,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2084860286","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96039206,0.00086573,0.03127524,0.00029578203,0.00006661036,0.000034693872,0.000071686234,0.00009763693,0.0069005396],"genre_scores_gemma":[0.9944981,0.00020760766,0.0047339285,0.000021142763,0.00000922885,0.000013021556,0.000009391301,0.000006615064,0.00050095445],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99983335,0.00002559979,0.000010145458,0.000025461446,0.000074541604,0.000030989162],"domain_scores_gemma":[0.999778,0.00007776407,0.000069356676,0.00003089034,0.000023017332,0.000020985899],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032597707,0.00022619357,0.00021088005,0.00016201599,0.00027396524,0.00062237435,0.00045275758,0.00027875582,0.0005333892],"category_scores_gemma":[0.00045296436,0.00014453883,0.00014671388,0.00020475528,0.0008901415,0.0006880026,0.0003894349,0.00023546068,0.0001067919],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002499361,0.00012483197,0.0013775995,0.00011563593,0.000019212592,0.00018109311,0.00020345199,0.01039715,0.8895785,0.08811067,0.00020206963,0.009439779],"study_design_scores_gemma":[0.00011827359,0.00029578115,0.0015064452,0.000025758281,0.0000281635,0.0002191593,0.00009992801,0.16511464,0.805884,0.023559812,0.0030951237,0.000052904],"about_ca_topic_score_codex":0.000400537,"about_ca_topic_score_gemma":0.0007628905,"teacher_disagreement_score":0.00062237435,"about_ca_system_score_codex":0.0004013616,"about_ca_system_score_gemma":0.0002133055,"threshold_uncertainty_score":0.0029121041},"labels":[],"label_agreement":null},{"id":"W2085270568","doi":"10.1103/physrevb.62.12684","title":"Electron transfer from electronic excited states to sub-vacuum electron traps in amorphous ice","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Excited state; Atomic physics; Exciton; Electron; Amorphous solid; Materials science; Vacuum level; Amorphous ice; Argon; Electron transfer; Physics; Condensed matter physics; Chemistry; Crystallography","score_opus":0.005080017604783486,"score_gpt":0.2709933788438097,"score_spread":0.2659133612390262,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2085270568","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99828595,0.00018167385,0.00072630856,0.000013199351,0.000002127382,0.000002696415,0.000013828396,0.000007987164,0.00076633034],"genre_scores_gemma":[0.9989942,0.00019771047,0.0003218905,0.000006930921,0.0000017091903,0.0000036084073,0.00003191488,0.0000033847718,0.00043873503],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99994385,0.000005993034,0.0000014031399,0.000011028428,0.00002014725,0.000017581779],"domain_scores_gemma":[0.99991786,0.0000472772,0.0000149817315,0.0000050734748,0.000009060107,0.0000057252105],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008017244,0.00014593324,0.00016812482,0.00014366438,0.00019674761,0.00029008923,0.0002240386,0.00016544694,0.001106205],"category_scores_gemma":[0.0001865389,0.00008842257,0.00010532748,0.00012214466,0.00024869584,0.00031067623,0.00023093085,0.00024238901,0.0001222289],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013808285,0.00003511376,0.0018232657,0.00008013885,0.000016839382,0.00034534576,0.00025823538,0.0012716465,0.99121034,0.0013530308,0.00004976765,0.0034180775],"study_design_scores_gemma":[0.000015699965,0.00029025238,0.0067298035,0.000008490085,0.00001732453,0.0002817548,0.00028805764,0.0052915704,0.9853639,0.0006637426,0.0010425112,0.000006805152],"about_ca_topic_score_codex":0.0003868026,"about_ca_topic_score_gemma":0.00044210488,"teacher_disagreement_score":0.001106205,"about_ca_system_score_codex":0.0001485977,"about_ca_system_score_gemma":0.0000703692,"threshold_uncertainty_score":0.003700614},"labels":[],"label_agreement":null},{"id":"W2086540608","doi":"10.1103/physrevb.64.075116","title":"Pairing fluctuations and pseudogaps in the attractive Hubbard model","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":64,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Canadian Institute for Advanced Research; Université de Sherbrooke","funders":"","keywords":"Pseudogap; Physics; Condensed matter physics; Pairing; Hubbard model; Quantum Monte Carlo; Monte Carlo method; Density of states; Superconductivity; Quantum mechanics; Cuprate","score_opus":0.024554762022850146,"score_gpt":0.31345179872597334,"score_spread":0.28889703670312317,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2086540608","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9711456,0.00074196927,0.02048135,0.0005941627,0.00005099628,0.000013179649,0.000030358684,0.00013893434,0.00680351],"genre_scores_gemma":[0.9983163,0.00014302536,0.00078059343,0.00001485409,0.000017691305,0.0000075466846,0.000009957407,0.000008364387,0.00070168736],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99985945,0.000059744707,0.0000042608795,0.000009204131,0.000033424723,0.000033887263],"domain_scores_gemma":[0.99963045,0.00016460381,0.00007017579,0.0000447418,0.000034070505,0.000055881188],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004947265,0.00036115805,0.00046062213,0.0006901822,0.0007579626,0.0010085938,0.000662539,0.0006347691,0.000961506],"category_scores_gemma":[0.0013583488,0.00020930993,0.000321454,0.00047771676,0.0012343415,0.0013425063,0.00060720084,0.0005508142,0.00009907703],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017813181,0.00007313778,0.0017191316,0.000055588738,0.000034394747,0.0004670168,0.00019319695,0.21040079,0.0063076685,0.77664644,0.0007293791,0.0031951654],"study_design_scores_gemma":[0.000029865616,0.000044479395,0.00085031445,0.000009512163,0.000011299443,0.00011145272,0.000049747334,0.75196815,0.00067069236,0.24590884,0.00032558478,0.000020064348],"about_ca_topic_score_codex":0.002566005,"about_ca_topic_score_gemma":0.0022811138,"teacher_disagreement_score":0.002566005,"about_ca_system_score_codex":0.000688778,"about_ca_system_score_gemma":0.00043775068,"threshold_uncertainty_score":0.005102098},"labels":[],"label_agreement":null},{"id":"W2086773079","doi":"10.1103/physrevb.65.144112","title":"Low-frequency dielectric spectroscopy of the relaxor ferroelectric<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi mathvariant=\"normal\">Pb</mml:mi><mml:mo>(</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>−</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbTiO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":64,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Office of Naval Research","keywords":"Condensed matter physics; Physics; Ferroelectricity; Dielectric; Relaxation (psychology); Nuclear magnetic resonance; Materials science; Quantum mechanics","score_opus":0.016588236471458153,"score_gpt":0.24405271568909692,"score_spread":0.22746447921763877,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2086773079","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.82129335,0.0017955501,0.054638557,0.0030654792,0.0006017957,0.00007183731,0.006546615,0.0027094977,0.1092774],"genre_scores_gemma":[0.8733923,0.0014052574,0.028167732,0.00061791216,0.00008873178,0.000074682815,0.005968649,0.00096046197,0.08932429],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998677,0.000018961984,0.000005042225,0.000034824316,0.000043464894,0.000029961973],"domain_scores_gemma":[0.999772,0.000057347603,0.000027273445,0.000033431294,0.00008114255,0.000028701583],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026790265,0.00042536404,0.00021843129,0.00052623224,0.00056966214,0.00052813516,0.00045724466,0.00044358577,0.025980502],"category_scores_gemma":[0.00058165466,0.00024272181,0.00015521204,0.0004293388,0.00020711763,0.0007063555,0.0002994313,0.0012960866,0.005499509],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00036802597,0.00007856575,0.0011384062,0.00018992825,0.000019546233,0.0003091174,0.00020130468,0.00048160114,0.9588789,0.0035178575,0.016359948,0.018456781],"study_design_scores_gemma":[0.00003772287,0.00020393998,0.0048752404,0.00003591151,0.000024774585,0.00039998,0.0003151484,0.006465087,0.9516473,0.0008232941,0.03513276,0.00003885857],"about_ca_topic_score_codex":0.001787832,"about_ca_topic_score_gemma":0.0027821907,"teacher_disagreement_score":0.025980502,"about_ca_system_score_codex":0.00032651203,"about_ca_system_score_gemma":0.00026001062,"threshold_uncertainty_score":0.08691347},"labels":[],"label_agreement":null},{"id":"W2088225523","doi":"10.1103/physrevb.64.073104","title":"Nonperturbative approach to the self-energy of interacting electrons","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Chemical Physics Studies","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Physics; Electron; Coulomb; Self-energy; Basis (linear algebra); Quantum electrodynamics; Energy (signal processing); Quantum mechanics; Fermi gas; Mathematical physics","score_opus":0.011371225886672522,"score_gpt":0.2931403102606061,"score_spread":0.2817690843739336,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2088225523","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.42392185,0.006110446,0.46048695,0.0030131978,0.00087586493,0.0000861425,0.00012167112,0.00045716812,0.10492664],"genre_scores_gemma":[0.937205,0.0014523931,0.031644806,0.00034045984,0.00046489903,0.00011892501,0.000053654025,0.0001576784,0.028562266],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9995461,0.00012924259,0.0000149890775,0.000048038797,0.00020409802,0.000057459667],"domain_scores_gemma":[0.99951565,0.0001954578,0.00005075675,0.00009494581,0.000091362235,0.000051823772],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00074589817,0.00065367256,0.0007890294,0.0013783218,0.00088395,0.0012399282,0.002088992,0.001105077,0.0030077372],"category_scores_gemma":[0.0020069766,0.00034605642,0.00071696553,0.00048375083,0.0023185406,0.0017520207,0.0012491565,0.0014238667,0.00047298134],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000012551903,0.000026782804,0.00009935505,0.000032912227,0.000011763319,0.00017515638,0.00011878016,0.02561898,0.002078271,0.96950185,0.0002900728,0.0020334045],"study_design_scores_gemma":[0.00000763332,0.00001640702,0.00021663701,0.0000075435114,0.0000049294003,0.0001322448,0.000025327925,0.24475445,0.0005947654,0.7530148,0.001211249,0.000013952159],"about_ca_topic_score_codex":0.0008277707,"about_ca_topic_score_gemma":0.0006604884,"teacher_disagreement_score":0.0030077372,"about_ca_system_score_codex":0.0011655444,"about_ca_system_score_gemma":0.00058631983,"threshold_uncertainty_score":0.01006192},"labels":[],"label_agreement":null},{"id":"W2088651538","doi":"10.1103/physrevb.66.144507","title":"Increasing superconducting<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>’s by a factor of 1000 with large hopping anisotropies in two-dimensional<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>t</mml:mi><mml:mo>−</mml:mo><mml:mi>J</mml:mi></mml:math>model systems","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Condensed matter physics; Pairing; Physics; Anisotropy; Square lattice; Superexchange; Superconductivity; Electron; Isotropy; Lattice (music); Symmetry (geometry); Quantum mechanics; Antiferromagnetism","score_opus":0.02045157092143993,"score_gpt":0.25285771846741806,"score_spread":0.23240614754597813,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2088651538","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99126095,0.00013631981,0.0026193156,0.00018973462,0.00004072423,0.000015681928,0.00003766386,0.00016506201,0.0055344743],"genre_scores_gemma":[0.9971812,0.000095514704,0.0014112968,0.000020264179,0.00001717281,0.000014432712,0.000073947966,0.00005301769,0.0011333044],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997732,0.00005823049,0.000010418837,0.000027001068,0.00005334945,0.00007786537],"domain_scores_gemma":[0.99932647,0.00020142292,0.00009460979,0.00013119282,0.00013823685,0.00010812025],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042108487,0.00044201914,0.0007950114,0.0006526719,0.0006145835,0.00093730254,0.0007405106,0.00069224247,0.0075801457],"category_scores_gemma":[0.0016221097,0.00033866288,0.00051037833,0.00060820923,0.0007434573,0.00083110604,0.0008053938,0.00073657837,0.00040305004],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0018182857,0.00103386,0.011794582,0.0015654091,0.00032364746,0.001426084,0.0015636693,0.18417542,0.57242167,0.20323701,0.0064810873,0.014159392],"study_design_scores_gemma":[0.000365015,0.0016386536,0.009797645,0.00007237104,0.00017913117,0.0004219776,0.00053481234,0.66924757,0.28564322,0.027554616,0.0044173812,0.00012757003],"about_ca_topic_score_codex":0.0016583832,"about_ca_topic_score_gemma":0.002694615,"teacher_disagreement_score":0.0075801457,"about_ca_system_score_codex":0.0004801107,"about_ca_system_score_gemma":0.00054002035,"threshold_uncertainty_score":0.02535808},"labels":[],"label_agreement":null},{"id":"W2088730255","doi":"10.1103/physrevb.62.r11925","title":"Twin wall of proper cubic-tetragonal ferroelastics","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Tetragonal crystal system; Materials science; Crystallography; Chemistry; Crystal structure","score_opus":0.01222452143560938,"score_gpt":0.27881548860959515,"score_spread":0.2665909671739858,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2088730255","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6634763,0.00069318345,0.29459527,0.000380345,0.00018835897,0.000069636815,0.00011582767,0.000111798414,0.040369272],"genre_scores_gemma":[0.9282109,0.00033888983,0.061422992,0.000055229866,0.000029723527,0.000053458432,0.00013963385,0.00006174195,0.009687266],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"observational","domain_scores_codex":[0.9998833,0.000016037156,0.000008930076,0.000019248004,0.000050054336,0.000022403923],"domain_scores_gemma":[0.99985623,0.00002672238,0.000031880092,0.000020973357,0.000038599384,0.000025559444],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023485105,0.0003153578,0.00033483803,0.0005944924,0.00046373252,0.0007811777,0.0004713365,0.0005818348,0.0024140854],"category_scores_gemma":[0.0011736059,0.00031556535,0.00028482953,0.00033361447,0.00072861434,0.0009125241,0.00062972587,0.0005550118,0.00033054955],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007802608,0.00004562903,0.0017177669,0.0001353636,0.000021828522,0.00062761136,0.0002076285,0.047535922,0.03394992,0.8966389,0.0013873321,0.017654095],"study_design_scores_gemma":[0.000050513234,0.000071711256,0.0019905316,0.000050572136,0.000027427004,0.000919166,0.00030390444,0.61007357,0.029336285,0.34896952,0.008147605,0.00005915144],"about_ca_topic_score_codex":0.00043315926,"about_ca_topic_score_gemma":0.0011342014,"teacher_disagreement_score":0.0024140854,"about_ca_system_score_codex":0.00023016939,"about_ca_system_score_gemma":0.0003864799,"threshold_uncertainty_score":0.008075893},"labels":[],"label_agreement":null},{"id":"W2089223654","doi":"10.1103/physrevb.66.184432","title":"Tricritical behavior in a stacked triangular lattice Ising antiferromagnet<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CsCoBr</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences; Canadian Institute for Advanced Research; McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Ising model; Physics; Hexagonal lattice; Antiferromagnetism; Condensed matter physics; Phase transition; Frustration; Phase diagram; Lattice (music); Phase (matter); Quantum mechanics","score_opus":0.0210069411677964,"score_gpt":0.27042832277176504,"score_spread":0.24942138160396865,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2089223654","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9977991,0.00007244742,0.00032399304,0.00005051061,0.0000062932995,0.0000031159086,0.00006785786,0.000041041694,0.0016356529],"genre_scores_gemma":[0.9988201,0.00003629875,0.0004474049,0.000009342742,0.0000033648375,0.0000048585766,0.00012116327,0.000010607524,0.00054690376],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999162,0.000009021259,0.000004983086,0.000015054837,0.000034028537,0.000020757197],"domain_scores_gemma":[0.9997763,0.000043477627,0.00006139584,0.000020998015,0.000059070895,0.000038687398],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000084027204,0.00010120016,0.00013879949,0.0005517072,0.0004163998,0.0005172283,0.0003965752,0.00018521638,0.0017622345],"category_scores_gemma":[0.00046650934,0.00016304471,0.00011252344,0.0003809453,0.000583514,0.00023171204,0.00017916628,0.00031165255,0.00012939902],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005193589,0.00015632999,0.009498752,0.00033522016,0.00010994785,0.0009347751,0.00084883283,0.015918251,0.9423373,0.020974899,0.0022937807,0.0060726823],"study_design_scores_gemma":[0.00016232509,0.001038157,0.08175717,0.00007549372,0.00013015949,0.00094967755,0.0010031981,0.2747771,0.6253597,0.009851024,0.00475602,0.00014005206],"about_ca_topic_score_codex":0.010834718,"about_ca_topic_score_gemma":0.015496504,"teacher_disagreement_score":0.010834718,"about_ca_system_score_codex":0.0005542902,"about_ca_system_score_gemma":0.00039700264,"threshold_uncertainty_score":0.021543324},"labels":[],"label_agreement":null},{"id":"W2089226706","doi":"10.1103/physrevb.62.6530","title":"Site preference and magnetic properties for a perpendicular recording material: BaFe_{12-x}Zn_{x/2}Zr_{x/2}O_{19} nanoparticles","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic Properties and Synthesis of Ferrites","field":"Materials Science","cited_by":135,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Magnetocrystalline anisotropy; Materials science; Crystallography; Magnetization; Ion; Magnetic anisotropy; Spectral line; Condensed matter physics; Nuclear magnetic resonance; Physics; Chemistry; Magnetic field","score_opus":0.0349053521351605,"score_gpt":0.2590910766901024,"score_spread":0.2241857245549419,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2089226706","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9985562,0.00011092607,0.00045575248,0.00002001772,0.0000045276975,0.0000028713316,0.000060401668,0.000013622809,0.00077558716],"genre_scores_gemma":[0.9977029,0.00010076368,0.0008146663,0.0000072210028,0.0000038764756,0.0000051093793,0.0001588139,0.000009473535,0.001197052],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999417,0.0000058602254,0.000005808718,0.000019470737,0.000018392642,0.000008812943],"domain_scores_gemma":[0.99992144,0.000012460425,0.000022425127,0.0000064922833,0.000024052157,0.000013053992],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007443773,0.00014889496,0.00009871122,0.00013728118,0.00012101142,0.00025521414,0.00015842912,0.000156187,0.0006622236],"category_scores_gemma":[0.00018332707,0.00011331583,0.00006419693,0.0001065297,0.00010165106,0.00014641703,0.000070921065,0.000117813994,0.00017634634],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006658583,0.000009693888,0.0005049168,0.000014637921,0.000002341145,0.000015942316,0.000009691882,0.00007432439,0.9986525,0.000050083243,0.000023854527,0.00057540345],"study_design_scores_gemma":[0.000010170477,0.000134245,0.00532253,0.0000018202277,0.000017393604,0.000110287685,0.00002994457,0.0019445559,0.9917714,0.000014147591,0.0006384398,0.000005104453],"about_ca_topic_score_codex":0.0017548358,"about_ca_topic_score_gemma":0.0019757994,"teacher_disagreement_score":0.0017548358,"about_ca_system_score_codex":0.00014874115,"about_ca_system_score_gemma":0.00009721473,"threshold_uncertainty_score":0.0034891963},"labels":[],"label_agreement":null},{"id":"W2089994923","doi":"10.1103/physrevb.62.12181","title":"Neutron scattering and thermal studies of the Ni-incorporated<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CeSbNi</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>system","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rare-earth and actinide compounds","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Atomic Energy (Canada)","funders":"","keywords":"Magnetostriction; Inelastic neutron scattering; Condensed matter physics; Paramagnetism; Physics; Thermal expansion; Materials science; Inelastic scattering; Ground state; Scattering; Crystallography; Magnetic field; Atomic physics; Thermodynamics; Chemistry; Optics","score_opus":0.01800897873659884,"score_gpt":0.2539521261574852,"score_spread":0.23594314742088635,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2089994923","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9942865,0.00035969767,0.0005667212,0.00003783139,0.000010108917,0.000010224615,0.00035867517,0.000021105574,0.004349251],"genre_scores_gemma":[0.9898045,0.0005029916,0.0020653673,0.000023345763,0.0000042043516,0.000019349796,0.0010605484,0.00005020123,0.006469452],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999069,0.00001223441,0.0000056347694,0.000019194911,0.000035512658,0.00002051635],"domain_scores_gemma":[0.9998658,0.000024626497,0.000022587385,0.000009559103,0.000058166945,0.000019175844],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001645599,0.0002318139,0.0002738313,0.00016712253,0.00038623862,0.000313664,0.00026548532,0.00020283663,0.00264513],"category_scores_gemma":[0.00030244354,0.0001599554,0.000098740784,0.00034323294,0.00027741984,0.00021609607,0.00019039534,0.00034077678,0.00049010676],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003337695,0.000026019057,0.0005325334,0.00008866466,0.000011485658,0.000057491427,0.00010405349,0.00033821454,0.9966538,0.0005987306,0.00016228834,0.0010928654],"study_design_scores_gemma":[0.000011998718,0.00017058944,0.004281334,0.000010992125,0.000012138349,0.00007555393,0.000098621946,0.0014868439,0.9918828,0.000052000258,0.0019030138,0.000014088213],"about_ca_topic_score_codex":0.008448699,"about_ca_topic_score_gemma":0.013207624,"teacher_disagreement_score":0.008448699,"about_ca_system_score_codex":0.0005326876,"about_ca_system_score_gemma":0.00042549704,"threshold_uncertainty_score":0.016799033},"labels":[],"label_agreement":null},{"id":"W2090966422","doi":"10.1103/physrevb.65.140404","title":"Comparison of experimental and numerical micromagnetic dynamics in coherent precessional switching and modal oscillations","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":57,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Physics; Micromagnetics; Magnetization; Magnetization dynamics; Condensed matter physics; Wavelength; Wave vector; Ferromagnetism; Magnetometer; Magnetic field; Optics; Quantum mechanics","score_opus":0.01877122621958164,"score_gpt":0.3165146657440874,"score_spread":0.2977434395245057,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2090966422","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9636933,0.0002299041,0.030595731,0.00015982227,0.000017090944,0.000031122443,0.00008022096,0.00019582394,0.004996948],"genre_scores_gemma":[0.9891782,0.000073755386,0.010438431,0.000007688603,0.0000027639294,0.00002175121,0.000041303716,0.000011868137,0.00022428735],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999145,0.000019922449,0.000005545322,0.000014222025,0.000037345082,0.000008368882],"domain_scores_gemma":[0.999498,0.00031439692,0.000040574487,0.00007237469,0.000058283793,0.000016254726],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036463334,0.00014318734,0.000113933194,0.00017959869,0.00014806222,0.00033538914,0.00022453644,0.00017094286,0.00082839286],"category_scores_gemma":[0.0014666651,0.0001076684,0.00008171094,0.00021622263,0.00044134213,0.00038819987,0.00015321224,0.00026035964,0.00005571826],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00045153976,0.00044469934,0.008174146,0.00037563918,0.00005717534,0.00016881018,0.00047770626,0.17576464,0.7213938,0.039421614,0.00045428943,0.052815966],"study_design_scores_gemma":[0.00007138102,0.00015589605,0.005653075,0.000013621916,0.000010875896,0.00007105569,0.00008452376,0.85010755,0.14065671,0.0022883124,0.00087179354,0.000015149621],"about_ca_topic_score_codex":0.00095572916,"about_ca_topic_score_gemma":0.0011487631,"teacher_disagreement_score":0.00095572916,"about_ca_system_score_codex":0.00037637586,"about_ca_system_score_gemma":0.00021141677,"threshold_uncertainty_score":0.0027711987},"labels":[],"label_agreement":null},{"id":"W2091515943","doi":"10.1103/physrevb.66.184428","title":"Magnetic and transport behavior of electron-doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MnO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi/><mml:mo>(</mml:mo><mml:mn>0.45</mml:mn><mml:mn/><mml:mo>&lt;~</mml:mo><mml:mi>x</mml:mi><mml:mo>&lt;~</mml:mo><mml:mn>0</mml:mn><mml:mo>.</mml:mo><mml:mn>6</mml:mn><mml:mo>)</mml:mo></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Manitoba","funders":"","keywords":"Condensed matter physics; Ferromagnetism; Physics; Paramagnetism; Saturation (graph theory); Magnetization; Electron; Phase transition; Materials science; Magnetic field; Quantum mechanics","score_opus":0.014597880758343111,"score_gpt":0.23493087239102875,"score_spread":0.22033299163268563,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2091515943","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97684515,0.0014464167,0.0006801213,0.000750894,0.00018121631,0.000016680176,0.0020313282,0.00016919446,0.01787909],"genre_scores_gemma":[0.9816363,0.0008302761,0.0008082222,0.00016703337,0.00003364827,0.000025687612,0.0021737858,0.00008879108,0.014236227],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997538,0.0000247278,0.000011821531,0.000048066515,0.000068843576,0.000092768045],"domain_scores_gemma":[0.99970645,0.0000661191,0.00004831604,0.000024696323,0.00010721212,0.000047204947],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028820554,0.0003152,0.0003928087,0.00040678767,0.00059448445,0.0008857032,0.00085896323,0.0007748994,0.011075799],"category_scores_gemma":[0.00065478147,0.00021454951,0.0001745713,0.0007244691,0.00036094518,0.0005433705,0.00021272604,0.0006301212,0.0016309315],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.004462253,0.0004166447,0.0032965157,0.00083193317,0.0001559862,0.0011065073,0.0007006024,0.003913824,0.9442358,0.0067842705,0.022387154,0.011708459],"study_design_scores_gemma":[0.00011296684,0.00093970675,0.012113057,0.00015535459,0.00008175705,0.00028762952,0.0008573002,0.026503878,0.9420003,0.0006987628,0.016155912,0.00009338631],"about_ca_topic_score_codex":0.011340144,"about_ca_topic_score_gemma":0.011113301,"teacher_disagreement_score":0.011340144,"about_ca_system_score_codex":0.0014372406,"about_ca_system_score_gemma":0.00039613026,"threshold_uncertainty_score":0.037052214},"labels":[],"label_agreement":null},{"id":"W2091560706","doi":"10.1103/physrevb.68.235411","title":"Wulff shape of microscopic voids in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">UO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>crystals","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Nuclear Materials and Properties","field":"Materials Science","cited_by":49,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"University of Toronto","keywords":"Facet (psychology); Materials science; Void (composites); Crystallography; Scanning electron microscope; Cleavage (geology); Physics; Geometry; Condensed matter physics; Mathematics; Chemistry; Composite material","score_opus":0.01866706765590068,"score_gpt":0.2567408349540268,"score_spread":0.2380737672981261,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2091560706","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.88757455,0.0010001052,0.061827347,0.0004401428,0.000111394525,0.00008897745,0.006997214,0.005500054,0.03646016],"genre_scores_gemma":[0.95973533,0.00017501504,0.022609938,0.00005852315,0.0000094258285,0.000050703962,0.0031710295,0.000649585,0.013540439],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999187,0.0000035701419,0.000003010016,0.000025167921,0.000027050155,0.000022466336],"domain_scores_gemma":[0.99977046,0.0000529247,0.000052903353,0.00004501189,0.000046535242,0.000032198506],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008992716,0.00012353138,0.00014639302,0.00045171133,0.0003621306,0.0005507205,0.00039491657,0.00036998236,0.006139113],"category_scores_gemma":[0.0003638876,0.00016150899,0.00013575696,0.0003374078,0.00036493345,0.00039985657,0.00025772196,0.0003387717,0.000898285],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00067650253,0.00018063988,0.014863616,0.00036897443,0.00004264783,0.0011470092,0.0011800912,0.0070290314,0.785461,0.03327043,0.022141572,0.13363852],"study_design_scores_gemma":[0.00003570291,0.00018305141,0.07851425,0.00006417405,0.000024894194,0.0017743628,0.00048267285,0.02805172,0.81300896,0.005029073,0.07273005,0.00010114198],"about_ca_topic_score_codex":0.0029733188,"about_ca_topic_score_gemma":0.004095586,"teacher_disagreement_score":0.006139113,"about_ca_system_score_codex":0.0003808262,"about_ca_system_score_gemma":0.00038304302,"threshold_uncertainty_score":0.020537317},"labels":[],"label_agreement":null},{"id":"W2092305791","doi":"10.1103/physrevb.64.094435","title":"EPR study of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Er</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>crystal-field and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow/><mml:mrow><mml:mn>165</mml:mn></mml:mrow></mml:msup></mml:mrow><mml:mrow><mml:msup><mml:mrow><mml:mi mathvariant=\"normal\">Ho</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow><mml:mrow><mml:msup><mml:mrow><mml:mo>−</mml:mo><mml:mi mathvariant=\"normal\">E</mml:mi><mml:mi mathvariant=\"normal\">r</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn><mml:mo>+</mml:mo></mml:mrow></mml:msup></mml:mrow></mml:math>interactions in single crystals of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ho</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Y</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">VO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mi>x</mml:mi><mml:mo>=</mml:mo><mml:mn>0.02</mml:mn><mml:mn/><mml:mo>–</mml:mo><mml:mn>1</mml:mn><mml:mo>.</mml:mo><mml:mn>0</mml:mn><mml:mn>0</mml:mn><mml:mo>)</mml:mo></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Catalysis and Oxidation Reactions","field":"Chemical Engineering","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Electron paramagnetic resonance; Crystallography; Crystal (programming language); Paramagnetism; Field (mathematics); Atomic physics; Condensed matter physics; Nuclear magnetic resonance; Chemistry","score_opus":0.017779234370639097,"score_gpt":0.25112500569939467,"score_spread":0.23334577132875556,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2092305791","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.068236396,0.0026064694,0.0750083,0.017705983,0.0059995097,0.0005014379,0.12732473,0.016030869,0.6865863],"genre_scores_gemma":[0.19054776,0.0041655772,0.044358622,0.005257646,0.0008114317,0.0008150566,0.24142279,0.015934259,0.49668694],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9991411,0.0000845347,0.000033060154,0.0001590357,0.00042997624,0.0001521819],"domain_scores_gemma":[0.99877876,0.00018723508,0.000114022325,0.00025348036,0.0004933468,0.00017305222],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0013480508,0.0011686244,0.0012560711,0.0012270251,0.0023608059,0.0018140554,0.0021918747,0.0015968455,0.31628954],"category_scores_gemma":[0.0027576748,0.00054331636,0.0007575206,0.0027888028,0.000617579,0.0034928338,0.0013223958,0.004217304,0.08648801],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038142913,0.00014879084,0.00079981284,0.0007204638,0.000067957124,0.0004224694,0.0004258992,0.00076743163,0.051953748,0.014032804,0.89628345,0.033995695],"study_design_scores_gemma":[0.00021002551,0.00032676643,0.0047013145,0.00016372034,0.000059669746,0.0005724394,0.00064407825,0.004352394,0.086894155,0.004226551,0.89771277,0.000136014],"about_ca_topic_score_codex":0.0056598037,"about_ca_topic_score_gemma":0.008054723,"teacher_disagreement_score":0.31628954,"about_ca_system_score_codex":0.0017654232,"about_ca_system_score_gemma":0.0016386003,"threshold_uncertainty_score":0.97523},"labels":[],"label_agreement":null},{"id":"W2093362437","doi":"10.1103/physrevb.66.052106","title":"Stacking-fault energies for Ag, Cu, and Ni from empirical tight-binding potentials","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Surface and Thin Film Phenomena","field":"Physics and Astronomy","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"","keywords":"Tight binding; Stacking; Stacking fault; Fault (geology); Binding energy; Crystallography; Materials science; Chemistry; Computational chemistry; Atomic physics; Physics; Geology; Electronic structure; Seismology; Organic chemistry","score_opus":0.03436661269544215,"score_gpt":0.3184664100413878,"score_spread":0.28409979734594565,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2093362437","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8152763,0.002668557,0.12691931,0.00068632944,0.00011814959,0.00013319842,0.0015617202,0.0004297527,0.052206583],"genre_scores_gemma":[0.97366285,0.0015230029,0.01879688,0.000073001196,0.000023405617,0.00023289735,0.001291806,0.00020720542,0.0041889413],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99976355,0.00004774635,0.000011300557,0.000019462645,0.00009868877,0.00005918314],"domain_scores_gemma":[0.99968886,0.00012395848,0.000027987526,0.000050991315,0.000082255356,0.00002595552],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00051134685,0.00063486805,0.00074201095,0.0011409459,0.0011601709,0.0008187169,0.0017230848,0.00088136934,0.004111688],"category_scores_gemma":[0.0016141298,0.0003920012,0.0004520335,0.0016628236,0.0008747335,0.0011544686,0.0007656599,0.0010287032,0.00047783725],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000033583485,0.00003985461,0.00086916465,0.00015382995,0.000023449657,0.00009074107,0.00009619357,0.8994577,0.001858331,0.08652142,0.001021363,0.009834391],"study_design_scores_gemma":[0.00001871065,0.000021842407,0.0010291978,0.000031490075,0.00001418588,0.00004470774,0.000092928596,0.961343,0.0017171866,0.03438848,0.0012706164,0.000027603779],"about_ca_topic_score_codex":0.008206798,"about_ca_topic_score_gemma":0.015826462,"teacher_disagreement_score":0.008206798,"about_ca_system_score_codex":0.00160061,"about_ca_system_score_gemma":0.0011366149,"threshold_uncertainty_score":0.016318023},"labels":[],"label_agreement":null},{"id":"W2093702583","doi":"10.1103/physrevb.66.014524","title":"Muon spin relaxation studies of incommensurate magnetism and superconductivity in stage-4<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4.11</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>1.88</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>0.12</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":145,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto; McMaster University","funders":"","keywords":"Muon spin spectroscopy; Muon; Relaxation (psychology); Magnetism; Physics; Superconductivity; Condensed matter physics; Particle physics; Medicine","score_opus":0.02167590461532176,"score_gpt":0.2553397181478395,"score_spread":0.23366381353251775,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2093702583","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9868634,0.0004771642,0.0010060563,0.00011831882,0.000029728233,0.000018598928,0.0005060747,0.000085179185,0.010895416],"genre_scores_gemma":[0.97420317,0.0002021919,0.0007242939,0.00003581562,0.000008196702,0.00002410388,0.0007990921,0.00007501783,0.023928156],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99990773,0.000014672206,0.000003513507,0.00001425445,0.000021778496,0.000038022492],"domain_scores_gemma":[0.99977773,0.000047253627,0.000044345652,0.00002762701,0.0000693525,0.000033697583],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018947842,0.00017033482,0.00019078716,0.00038971138,0.0005521886,0.00033546094,0.00051250675,0.00032098117,0.00928128],"category_scores_gemma":[0.00049103616,0.00025332926,0.00021212347,0.0002911679,0.00031688582,0.00040704873,0.00037247964,0.0005414687,0.00089834834],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013471353,0.00012148964,0.004700781,0.00017639472,0.00003974583,0.00030157223,0.0006978752,0.00046044722,0.98129416,0.0029585767,0.0028492745,0.0050524757],"study_design_scores_gemma":[0.00010059977,0.0014019468,0.0564153,0.00005410022,0.00007792096,0.00024924267,0.0005192561,0.004007095,0.92084306,0.00087028847,0.015403506,0.00005776485],"about_ca_topic_score_codex":0.00710886,"about_ca_topic_score_gemma":0.010237183,"teacher_disagreement_score":0.00928128,"about_ca_system_score_codex":0.00057207496,"about_ca_system_score_gemma":0.00033779469,"threshold_uncertainty_score":0.031048954},"labels":[],"label_agreement":null},{"id":"W2094971679","doi":"10.1103/physrevb.66.075121","title":"Theory of photonic crystal heterostructures","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":46,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Photonic crystal; Heterojunction; Superlattice; Yablonovite; Photonics; Band gap; Dispersion relation; Quantum tunnelling; Envelope (radar); Optoelectronics; Electronic band structure; Materials science; Physics; Condensed matter physics; Optics; Quantum mechanics; Photonic integrated circuit; Computer science; Telecommunications","score_opus":0.01481323895331079,"score_gpt":0.2811554228691785,"score_spread":0.2663421839158677,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2094971679","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.03177003,0.004516367,0.8014788,0.0024329307,0.00061284326,0.00016196413,0.0005474861,0.00026438467,0.15821518],"genre_scores_gemma":[0.7167721,0.00556636,0.20196153,0.0014494947,0.00066377426,0.0010845986,0.0006131036,0.0003283291,0.071560636],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99964476,0.00008072617,0.000012166078,0.000024922258,0.00017267317,0.000064701024],"domain_scores_gemma":[0.9998129,0.000044412645,0.000016564518,0.000034973935,0.00006201794,0.000029178209],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007135702,0.0007446833,0.00079157826,0.00077287323,0.0009850035,0.0014461675,0.0016507148,0.0019389883,0.0042946283],"category_scores_gemma":[0.0007508626,0.00038682582,0.0007470566,0.00074067817,0.001518091,0.0018564404,0.0010633635,0.0015123355,0.00085928326],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000002765839,0.000008307758,0.000032054613,0.00001699321,0.0000043070377,0.000041659085,0.000030889863,0.019983033,0.00053276354,0.97747976,0.00074762065,0.0011198253],"study_design_scores_gemma":[0.000015837217,0.0000150177875,0.000099379875,0.000020481715,0.0000037023326,0.000119887474,0.000028280752,0.3353915,0.00030325123,0.65236926,0.011618054,0.000015332751],"about_ca_topic_score_codex":0.0025560933,"about_ca_topic_score_gemma":0.0016018159,"teacher_disagreement_score":0.0042946283,"about_ca_system_score_codex":0.0011965779,"about_ca_system_score_gemma":0.0010362713,"threshold_uncertainty_score":0.014366984},"labels":[],"label_agreement":null},{"id":"W2095389938","doi":"10.1103/physrevb.67.195334","title":"Electron-spin polarization in symmetric type-II quantum wells from bulk inversion asymmetry","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University","funders":"","keywords":"Physics; Quantum tunnelling; Asymmetry; Quantum well; Condensed matter physics; Electron; Spin polarization; Hamiltonian (control theory); Polarization (electrochemistry); Quantum mechanics; Chemistry","score_opus":0.008324823029919914,"score_gpt":0.2637797148832644,"score_spread":0.25545489185334447,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2095389938","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99026746,0.0003391159,0.0047298507,0.00010920129,0.0000158021,0.000008786138,0.000030884174,0.000038966824,0.004460012],"genre_scores_gemma":[0.99827886,0.00029207757,0.0009927935,0.000009977509,0.000005871564,0.0000075064218,0.000017475972,0.0000074234704,0.00038806023],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99989676,0.00002237192,0.0000035238709,0.000009619235,0.000043829423,0.000023757148],"domain_scores_gemma":[0.99981445,0.000101614416,0.00003085858,0.000016536038,0.000020467867,0.00001602743],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002883185,0.0002556235,0.000312999,0.00017636029,0.0003249401,0.00058005354,0.00033653883,0.00028607433,0.0011502753],"category_scores_gemma":[0.0004199384,0.00021524516,0.00018274154,0.0001904836,0.000598363,0.00050566305,0.00037350194,0.00032037953,0.00023351025],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00053799455,0.0001358473,0.001680587,0.00028212686,0.00004643372,0.0008988737,0.00025097356,0.021872083,0.89783,0.06530092,0.00062221586,0.010541949],"study_design_scores_gemma":[0.00019931867,0.00042208363,0.0035289032,0.00006492125,0.00008624629,0.0010577466,0.0002510803,0.3931394,0.5615441,0.037928566,0.0017206738,0.0000569513],"about_ca_topic_score_codex":0.00031627555,"about_ca_topic_score_gemma":0.0004526743,"teacher_disagreement_score":0.0011502753,"about_ca_system_score_codex":0.00027616002,"about_ca_system_score_gemma":0.00019227552,"threshold_uncertainty_score":0.0038480759},"labels":[],"label_agreement":null},{"id":"W2103487866","doi":"10.1103/physrevb.68.125209","title":"Energy landscape of relaxed amorphous silicon","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Thin-Film Transistor Technologies","field":"Engineering","cited_by":38,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Energy landscape; Relaxation (psychology); Activation energy; Amorphous silicon; Silicon; Atom (system on chip); Amorphous solid; Energy (signal processing); Chemical physics; Materials science; Physics; Statistical physics; Engineering physics; Computer science; Crystalline silicon; Chemistry; Crystallography; Optoelectronics; Thermodynamics; Quantum mechanics; Neuroscience; Physical chemistry; Parallel computing; Biology","score_opus":0.007540241109202653,"score_gpt":0.2267550329908987,"score_spread":0.21921479188169604,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2103487866","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98764604,0.00016412164,0.006658315,0.00025310874,0.0000068812647,0.000011112806,0.00020077599,0.00006914641,0.0049906154],"genre_scores_gemma":[0.9970536,0.00009125843,0.0017322433,0.0000326744,0.0000039613756,0.000022382745,0.00025541516,0.000022086437,0.00078632147],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998956,0.00002867044,0.000003754372,0.000016823744,0.00002375902,0.000031518244],"domain_scores_gemma":[0.99976,0.00011213726,0.000029091227,0.000030881984,0.000032958458,0.000034954846],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00024970132,0.00032808966,0.0004982798,0.0006598573,0.000595352,0.0009010891,0.0006854182,0.0007194874,0.0023316757],"category_scores_gemma":[0.0008002624,0.00029564943,0.00044797556,0.0004364542,0.0007986363,0.0008616089,0.00037743564,0.00039390835,0.00015922799],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00019550243,0.00005365637,0.0021611995,0.0000417593,0.00006891134,0.00029964306,0.00006001188,0.9637824,0.012855542,0.01845508,0.0003963509,0.001629884],"study_design_scores_gemma":[0.00003571898,0.0000909009,0.0015529133,0.0000052787946,0.000020185169,0.0000437689,0.000041831783,0.9883344,0.0013225576,0.008236193,0.00030091696,0.0000151831855],"about_ca_topic_score_codex":0.0044082147,"about_ca_topic_score_gemma":0.0032542509,"teacher_disagreement_score":0.0044082147,"about_ca_system_score_codex":0.0010057843,"about_ca_system_score_gemma":0.00043873762,"threshold_uncertainty_score":0.008765101},"labels":[],"label_agreement":null},{"id":"W2103660116","doi":"10.1103/physrevb.67.104102","title":"Ground state of the relaxor ferroelectric<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mi mathvariant=\"normal\">b</mml:mi><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">Z</mml:mi><mml:mi mathvariant=\"normal\">n</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":87,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto; Simon Fraser University","funders":"Office of Naval Research; Natural Sciences and Engineering Research Council of Canada; U.S. Department of Energy","keywords":"Tetragonal crystal system; Ferroelectricity; Materials science; Condensed matter physics; Polar; Crystallography; Phase (matter); Trigonal crystal system; Crystal (programming language); Physics; Ground state; Crystal structure; Dielectric; Chemistry; Atomic physics; Quantum mechanics; Computer science","score_opus":0.01683031434091287,"score_gpt":0.24554303673951255,"score_spread":0.2287127223985997,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2103660116","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.3874379,0.0010754181,0.037206776,0.006178667,0.0011644145,0.00010635477,0.007759902,0.002933932,0.5561366],"genre_scores_gemma":[0.8107471,0.00055681955,0.014002708,0.001005961,0.00013290651,0.00010737283,0.006092804,0.0011004427,0.16625392],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998951,0.00001142219,0.000002382257,0.000023533144,0.0000232817,0.000044342614],"domain_scores_gemma":[0.99992585,0.000015836351,0.0000060200546,0.000019395908,0.000015596499,0.000017204402],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015805553,0.00028048843,0.00039313966,0.00044931608,0.0012505214,0.0015056402,0.00060710823,0.00088908954,0.09033477],"category_scores_gemma":[0.0003252085,0.00028514824,0.00019103983,0.00033894178,0.0005308621,0.001003958,0.00062621955,0.0011719503,0.010457686],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009417604,0.00017860167,0.0019431645,0.0005477034,0.000050518982,0.0016086181,0.00088748726,0.0050756144,0.11736876,0.639866,0.19150294,0.040028814],"study_design_scores_gemma":[0.00060864794,0.0010408306,0.011201804,0.0003353851,0.000094249604,0.0020748274,0.0028432226,0.116047986,0.2126863,0.27050844,0.38216716,0.00039119876],"about_ca_topic_score_codex":0.0032634898,"about_ca_topic_score_gemma":0.0051243687,"teacher_disagreement_score":0.09033477,"about_ca_system_score_codex":0.0006278543,"about_ca_system_score_gemma":0.0005068678,"threshold_uncertainty_score":0.3021999},"labels":[],"label_agreement":null},{"id":"W2104076547","doi":"10.1103/physrevb.64.184114","title":"Monoclinic phase in the relaxor-based piezoelectric/ferroelectric<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mi mathvariant=\"normal\">b</mml:mi><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">M</mml:mi><mml:mi mathvariant=\"normal\">g</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mo>)</mml:mo><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mo>−</mml:mo><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mi mathvariant=\"normal\">b</mml:mi><mml:mi mathvariant=\"normal\">T</mml:mi><mml:mi mathvariant=\"normal\">i</mml:mi><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>system","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":361,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Office of Naval Research; U.S. Department of Energy","keywords":"Monoclinic crystal system; Tetragonal crystal system; Phase boundary; Ferroelectricity; Materials science; Phase diagram; Crystallography; Phase (matter); Space group; Crystal structure; Condensed matter physics; X-ray crystallography; Physics; Diffraction; Dielectric; Chemistry; Optics","score_opus":0.01984774490854192,"score_gpt":0.25792602363491046,"score_spread":0.23807827872636855,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2104076547","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.63759285,0.006096475,0.049168795,0.0038154547,0.0013138048,0.00033619127,0.0047791763,0.0014823888,0.29541495],"genre_scores_gemma":[0.8512517,0.0018587185,0.03926451,0.0008528194,0.00009897346,0.00016872471,0.0026669817,0.0004157378,0.10342195],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998443,0.000019140864,0.000005991557,0.00003960882,0.000061843355,0.00002910384],"domain_scores_gemma":[0.99993515,0.000011557769,0.000015464972,0.000010965575,0.000018122264,0.000008766647],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017271,0.00018487922,0.00020482167,0.00024654577,0.00064865046,0.0005571632,0.0005442356,0.0004567311,0.020143475],"category_scores_gemma":[0.00030753543,0.00032800305,0.00011335376,0.00040889124,0.0003165573,0.0005728471,0.0003062927,0.0006179013,0.003698111],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00096835126,0.00020247324,0.0012461976,0.0010453517,0.00001857649,0.000582218,0.0005198503,0.0014033582,0.7653328,0.10276737,0.046678074,0.0792353],"study_design_scores_gemma":[0.00027850253,0.0007359163,0.0037121354,0.00007361483,0.000023942397,0.0007963537,0.00040881668,0.013377215,0.75904274,0.009265778,0.21222484,0.000060064678],"about_ca_topic_score_codex":0.0032167365,"about_ca_topic_score_gemma":0.0056719193,"teacher_disagreement_score":0.020143475,"about_ca_system_score_codex":0.00041480456,"about_ca_system_score_gemma":0.00057538913,"threshold_uncertainty_score":0.06738663},"labels":[],"label_agreement":null},{"id":"W2107779131","doi":"10.1103/physrevb.65.115423","title":"Scanning tunneling spectroscopy on crossed carbon nanotubes","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Carbon Nanotubes in Composites","field":"Materials Science","cited_by":33,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Scanning tunneling microscope; Scanning tunneling spectroscopy; Materials science; Spectroscopy; Carbon nanotube; Local density of states; Quantum tunnelling; Condensed matter physics; Electronic structure; Density of states; Band bending; Molecular physics; Chemical physics; Nanotechnology; Physics; Optoelectronics; Quantum mechanics","score_opus":0.020248188843771272,"score_gpt":0.3009349192324436,"score_spread":0.2806867303886723,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2107779131","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9727098,0.004395666,0.016046831,0.000098386496,0.000093758295,0.000057759884,0.00038068142,0.0001406852,0.006076401],"genre_scores_gemma":[0.98600304,0.0020852431,0.009793641,0.00005048734,0.00001798426,0.000023942532,0.00022666638,0.000011720351,0.0017871718],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99971336,0.000036552556,0.000011026033,0.00004606456,0.00016013076,0.000032706183],"domain_scores_gemma":[0.9997304,0.000066285655,0.000040996852,0.000024583043,0.00009440032,0.000043320513],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032128123,0.00031120746,0.00028188946,0.0006379654,0.00038811457,0.0005054344,0.0004133973,0.00057468074,0.0010268462],"category_scores_gemma":[0.0006484576,0.00014498261,0.00016027785,0.0005424819,0.0002829549,0.00066629326,0.00040300871,0.00037110157,0.0002226593],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006514442,0.00002231386,0.0005460706,0.00011675993,0.000021354992,0.00045209553,0.000112668255,0.000555765,0.9872586,0.00391901,0.0001530572,0.0067770695],"study_design_scores_gemma":[0.000019086363,0.0003896302,0.0070387423,0.000055903758,0.000043655637,0.0022381921,0.00021784562,0.014579363,0.9639998,0.0029576698,0.008406904,0.00005312452],"about_ca_topic_score_codex":0.00061706477,"about_ca_topic_score_gemma":0.00054276845,"teacher_disagreement_score":0.0010268462,"about_ca_system_score_codex":0.00031307995,"about_ca_system_score_gemma":0.00018214712,"threshold_uncertainty_score":0.003435135},"labels":[],"label_agreement":null},{"id":"W2112426484","doi":"10.1103/physrevb.67.235309","title":"Theoretical analysis of scanning capacitance microscopy","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Force Microscopy Techniques and Applications","field":"Physics and Astronomy","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Capacitance; Scanning capacitance microscopy; Semiconductor; Materials science; Resolution (logic); Laplace transform; Voltage; Poisson distribution; Microscopy; Computational physics; Optics; Condensed matter physics; Physics; Optoelectronics; Scanning confocal electron microscopy; Mathematical analysis; Quantum mechanics; Mathematics","score_opus":0.007222821053391986,"score_gpt":0.3304237136526001,"score_spread":0.3232008925992081,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2112426484","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.030622188,0.0074052853,0.8301377,0.004162789,0.00051957945,0.00013342804,0.00027206368,0.00046754413,0.12627943],"genre_scores_gemma":[0.8754967,0.009669004,0.08353485,0.0012607996,0.0008485854,0.00048584616,0.00024534247,0.00020396206,0.028255],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99935037,0.000111333204,0.000014500903,0.000062444946,0.00038751084,0.00007382609],"domain_scores_gemma":[0.99905044,0.0005399341,0.00004794748,0.00007741434,0.00023964416,0.000044612338],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0009580006,0.0006448095,0.00073758105,0.0021620237,0.00086596946,0.0012977781,0.0015179645,0.0016334801,0.0054629156],"category_scores_gemma":[0.0038247672,0.00032854668,0.00073766964,0.00093699276,0.0015545394,0.002038845,0.0009772917,0.0010601423,0.00067040033],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000011346035,0.000013166614,0.00009488103,0.000117260905,0.0000100980915,0.00017812892,0.000056708213,0.11986082,0.0023162384,0.86899096,0.0016366102,0.0067137023],"study_design_scores_gemma":[0.0000057745733,0.000011218722,0.00012245476,0.000036056368,0.000005071994,0.00013131578,0.000021262813,0.7277062,0.00067668525,0.2672017,0.004065844,0.0000163219],"about_ca_topic_score_codex":0.0025855608,"about_ca_topic_score_gemma":0.001016829,"teacher_disagreement_score":0.0054629156,"about_ca_system_score_codex":0.0018855283,"about_ca_system_score_gemma":0.00074453856,"threshold_uncertainty_score":0.01827526},"labels":[],"label_agreement":null},{"id":"W2113764612","doi":"10.1103/physrevb.62.10451","title":"Multiterminal molecular wire systems: A self-consistent theory and computer simulations of charging and transport","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":68,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Molecular wire; Scattering; Metal; Materials science; Molecule; Molecular electronics; Electron; Chain (unit); Transistor; Layer (electronics); Voltage; Condensed matter physics; Chemistry; Molecular physics; Nanotechnology; Physics; Quantum mechanics","score_opus":0.0040149654079936255,"score_gpt":0.2261960498871902,"score_spread":0.22218108447919657,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2113764612","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.43816504,0.0007054116,0.5348247,0.001413721,0.00019503386,0.00023891308,0.0003951857,0.00043757958,0.023624428],"genre_scores_gemma":[0.80221605,0.0005306029,0.18780589,0.0002835501,0.00009520119,0.0010329711,0.0003012408,0.0002064386,0.0075280946],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998118,0.00007007021,0.000006594963,0.000013386583,0.00006997185,0.000028179797],"domain_scores_gemma":[0.99953294,0.0002689199,0.00003403964,0.00004883427,0.000066725624,0.000048466212],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005767321,0.00032553857,0.00077699346,0.00049770024,0.00076518185,0.0007892595,0.001364254,0.0018882737,0.0018304486],"category_scores_gemma":[0.0013655644,0.0004591754,0.0006603156,0.00074695307,0.000992582,0.0009516104,0.00074187136,0.0010343189,0.00027727097],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00002265256,0.000045922057,0.00030249567,0.00003091293,0.000018085271,0.00007099116,0.00004040821,0.95557314,0.0010896284,0.04013973,0.0003478048,0.0023180742],"study_design_scores_gemma":[0.000007951531,0.000004904878,0.000036707734,0.0000019204133,0.0000012764451,0.0000032981652,0.0000041244407,0.9969791,0.000113006674,0.0026256866,0.00021967669,0.00000232064],"about_ca_topic_score_codex":0.0032685925,"about_ca_topic_score_gemma":0.0038314024,"teacher_disagreement_score":0.0032685925,"about_ca_system_score_codex":0.0008412969,"about_ca_system_score_gemma":0.0009584561,"threshold_uncertainty_score":0.0064991713},"labels":[],"label_agreement":null},{"id":"W2114344783","doi":"10.1103/physrevb.64.134411","title":"Growth, structure, electronic, and magnetic properties of MgO/Fe(001) bilayers and Fe/MgO/Fe(001) trilayers","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic properties of thin films","field":"Physics and Astronomy","cited_by":166,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada; Alexander von Humboldt-Stiftung","keywords":"Materials science; Scanning tunneling microscope; Monolayer; Condensed matter physics; Quantum tunnelling; Scanning tunneling spectroscopy; Ferromagnetic resonance; Electron diffraction; Epitaxy; Thin film; Crystallography; Layer (electronics); Diffraction; Nanotechnology; Optics; Magnetization; Optoelectronics; Magnetic field; Chemistry","score_opus":0.009710771365584422,"score_gpt":0.2374755380364418,"score_spread":0.22776476667085738,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2114344783","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994723,0.00013385198,0.00007530315,0.0000072538564,0.0000027231786,0.0000024496212,0.0001383371,0.000006058963,0.00016165397],"genre_scores_gemma":[0.998505,0.00022464622,0.0005272271,0.0000070949204,0.0000031604905,0.000008743679,0.00029202536,0.000010864741,0.00042117777],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999341,0.000004362324,0.000006362337,0.0000166573,0.000021948377,0.000016658636],"domain_scores_gemma":[0.9998971,0.000016162885,0.00003014891,0.000008860433,0.000021109587,0.000026642196],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007879241,0.00019932828,0.00016096765,0.00024822418,0.00014683942,0.00022736267,0.0001702663,0.00021227056,0.0004960541],"category_scores_gemma":[0.00025720915,0.00017395799,0.000099748664,0.00016140383,0.000115063754,0.00013470961,0.00010169285,0.00017088109,0.00010879166],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000056290966,0.000005836726,0.00048183472,0.000019725438,0.000003940778,0.000023499337,0.000010605687,0.00007202148,0.9990607,0.000019496541,0.00001053452,0.00023555398],"study_design_scores_gemma":[0.000021806261,0.00015542607,0.027147124,0.000010668834,0.000027309427,0.00013165704,0.000068638146,0.0028297002,0.96902555,0.000025381783,0.0005492971,0.0000075041216],"about_ca_topic_score_codex":0.0020986143,"about_ca_topic_score_gemma":0.0025826725,"teacher_disagreement_score":0.0020986143,"about_ca_system_score_codex":0.00023540814,"about_ca_system_score_gemma":0.00008096748,"threshold_uncertainty_score":0.004172802},"labels":[],"label_agreement":null},{"id":"W2115659021","doi":"10.1103/physrevb.65.172105","title":"Ferroelectric ordering in the relaxor<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mi mathvariant=\"normal\">b</mml:mi><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">M</mml:mi><mml:mi mathvariant=\"normal\">g</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>as evidenced by low-temperature phonon anomalies","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":155,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada; Simon Fraser University; University of Toronto","funders":"","keywords":"Omega; Ferroelectricity; Energy (signal processing); Physics; Phonon; Condensed matter physics; Crystallography; Chemistry; Quantum mechanics","score_opus":0.015996113881228527,"score_gpt":0.24355767669669862,"score_spread":0.22756156281547008,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2115659021","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.21801166,0.0024320967,0.17634588,0.007083173,0.0020257472,0.00032805107,0.018922046,0.020090409,0.5547609],"genre_scores_gemma":[0.38315415,0.002085548,0.13536388,0.0018102506,0.00018868515,0.0002638292,0.018942334,0.0099918805,0.4481995],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99976903,0.000043219057,0.0000115352805,0.000054175667,0.000079085505,0.00004288739],"domain_scores_gemma":[0.99977404,0.00006499166,0.000021019907,0.000047509475,0.000060436414,0.00003210724],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003974625,0.00045485518,0.0003345955,0.00048271814,0.001068317,0.0011434158,0.00064652145,0.0006126915,0.090068236],"category_scores_gemma":[0.00073921395,0.0005643484,0.00028175404,0.0005036924,0.00035875442,0.0013844233,0.00056196406,0.0015091088,0.020312142],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010727913,0.00022409258,0.001886733,0.00084871653,0.000047290767,0.0010968025,0.0010261462,0.0030380043,0.4554611,0.13303591,0.30886313,0.09339939],"study_design_scores_gemma":[0.00018301261,0.00025428133,0.002482043,0.00011495412,0.00004361814,0.00062709575,0.0003955407,0.016723773,0.40614593,0.011649089,0.5612498,0.00013080258],"about_ca_topic_score_codex":0.0046433285,"about_ca_topic_score_gemma":0.01074387,"teacher_disagreement_score":0.090068236,"about_ca_system_score_codex":0.00062438607,"about_ca_system_score_gemma":0.0006923764,"threshold_uncertainty_score":0.30130827},"labels":[],"label_agreement":null},{"id":"W2117046374","doi":"10.1103/physrevb.61.555","title":"Muon spin relaxation and nonmagnetic Kondo state in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PrInAg</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rare-earth and actinide compounds","field":"Physics and Astronomy","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Basic Energy Sciences; Division of Materials Research; Nederlandse Organisatie voor Wetenschappelijk Onderzoek; Los Alamos National Laboratory; McMaster University; National Science Foundation; Iowa State University; U.S. Department of Energy","keywords":"Muon; Muon spin spectroscopy; Physics; Hyperfine structure; Ground state; Relaxation (psychology); Magnetism; Condensed matter physics; Magnetic moment; Spin (aerodynamics); Particle physics; Atomic physics; Thermodynamics","score_opus":0.012699564936491851,"score_gpt":0.24853485278914947,"score_spread":0.23583528785265762,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2117046374","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98550177,0.00042705928,0.0020400875,0.00018704958,0.000026610864,0.0000075528055,0.00024583781,0.00016692506,0.011397102],"genre_scores_gemma":[0.9933258,0.00019141356,0.00061009324,0.000036469297,0.000004771001,0.000007270414,0.00023357997,0.000047918784,0.005542622],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99995494,0.0000054556763,0.0000015622848,0.00001359244,0.000008833827,0.000015643473],"domain_scores_gemma":[0.99992764,0.000026072903,0.000017959266,0.00001334436,0.0000062279964,0.000008754583],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000102424114,0.00016600253,0.00014891628,0.00021939415,0.00028370478,0.00051202724,0.00040008366,0.00020407877,0.007478185],"category_scores_gemma":[0.00020736839,0.00015880071,0.00009386344,0.0002032021,0.00028889056,0.00042862687,0.00019169177,0.00038162887,0.00041761564],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010306339,0.00019109699,0.002392561,0.00032556456,0.000050573886,0.0007064149,0.0008065873,0.004019329,0.88700384,0.08790667,0.0042323098,0.011334444],"study_design_scores_gemma":[0.00019558436,0.00086620566,0.022270462,0.00006738015,0.000062982625,0.0005681829,0.0006449002,0.07592542,0.87295336,0.013409769,0.0129302535,0.000105500294],"about_ca_topic_score_codex":0.0040033227,"about_ca_topic_score_gemma":0.0056295176,"teacher_disagreement_score":0.007478185,"about_ca_system_score_codex":0.000443906,"about_ca_system_score_gemma":0.00022762665,"threshold_uncertainty_score":0.025017023},"labels":[],"label_agreement":null},{"id":"W2119343956","doi":"10.1103/physrevb.65.184414","title":"Orbital-lattice polarons in ferromagnetic<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">LaMnO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Superexchange; Polaron; Phonon; Physics; Condensed matter physics; Jahn–Teller effect; Ferromagnetism; Lattice (music); Quasiparticle; Electron; Quantum mechanics; Ion; Superconductivity","score_opus":0.017824438220737565,"score_gpt":0.24348117206136538,"score_spread":0.22565673384062782,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2119343956","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9844812,0.00035249232,0.0035313582,0.0002634608,0.00003695319,0.000010854639,0.00005542043,0.000057428868,0.011210813],"genre_scores_gemma":[0.99614775,0.00017796515,0.0011505854,0.000030061734,0.000009492836,0.00001043743,0.000044112563,0.000011082195,0.0024184927],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999362,0.000013997619,0.000001830523,0.000012767641,0.000013774063,0.000021374783],"domain_scores_gemma":[0.9998939,0.00005413729,0.000021696847,0.0000071767427,0.000010921801,0.0000121234825],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015254301,0.00020011188,0.00015029931,0.00034790506,0.0006030305,0.0006609654,0.00034610395,0.00032810846,0.003646276],"category_scores_gemma":[0.0003141431,0.00015519695,0.00011676291,0.00020984148,0.00062392204,0.00045853577,0.00037327484,0.00036645992,0.0003218042],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0012109121,0.00039453068,0.0045152716,0.00088391366,0.00005802254,0.0019320744,0.0021405541,0.026322335,0.4792143,0.4557782,0.004665142,0.022884633],"study_design_scores_gemma":[0.000335654,0.0010167415,0.0093268445,0.00011461066,0.00008994177,0.00091542734,0.0021984815,0.46568722,0.38882968,0.12310247,0.008295705,0.000087265136],"about_ca_topic_score_codex":0.0011166508,"about_ca_topic_score_gemma":0.0023200668,"teacher_disagreement_score":0.003646276,"about_ca_system_score_codex":0.00030957285,"about_ca_system_score_gemma":0.0001903852,"threshold_uncertainty_score":0.012198031},"labels":[],"label_agreement":null},{"id":"W2122526998","doi":"10.1103/physrevb.64.235412","title":"Models of electron transport through organic molecular monolayers self-assembled on nanoscale metallic contacts","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":136,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Monolayer; Molecule; Conductance; Asymmetry; Materials science; Dithiol; Chemical physics; Break junction; Molecular electronics; Electron; Metal; Condensed matter physics; Electron transport chain; Molecular physics; Nanotechnology; Physics; Chemistry; Quantum mechanics","score_opus":0.008056157397973955,"score_gpt":0.2436544911551517,"score_spread":0.23559833375717773,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2122526998","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6166629,0.0065063974,0.25917184,0.005960888,0.0005021527,0.00024349918,0.00064454135,0.0005541313,0.109753616],"genre_scores_gemma":[0.9540546,0.0035657957,0.015333716,0.0003701589,0.00015425179,0.00032762907,0.00023558908,0.00006856779,0.025889723],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99985206,0.000030932253,0.000006004359,0.000023435761,0.000055241188,0.000032455268],"domain_scores_gemma":[0.9998356,0.0000553298,0.000020520289,0.000026448266,0.00002875053,0.00003332726],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030475593,0.00055182923,0.00069905096,0.0007910701,0.0008285993,0.0012471189,0.0020789169,0.002089502,0.0028185812],"category_scores_gemma":[0.0005211232,0.00033544397,0.00074286666,0.0006738594,0.0010664709,0.002111784,0.000711746,0.00063574145,0.0008107866],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000091626,0.00010439398,0.00047284758,0.00014941515,0.000040561354,0.000593368,0.00019385158,0.5200548,0.011965851,0.4621413,0.0011817972,0.0030100928],"study_design_scores_gemma":[0.000057011042,0.00007167145,0.00022166847,0.00001849235,0.000013991853,0.00008743899,0.000054657525,0.8955935,0.001088214,0.10040231,0.0023737506,0.000017221584],"about_ca_topic_score_codex":0.0019611341,"about_ca_topic_score_gemma":0.0014771473,"teacher_disagreement_score":0.0028185812,"about_ca_system_score_codex":0.0012688386,"about_ca_system_score_gemma":0.00041891728,"threshold_uncertainty_score":0.009429097},"labels":[],"label_agreement":null},{"id":"W2124012452","doi":"10.1103/physrevb.65.155323","title":"Duality and nonlinear response for quantum Hall systems","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Duality (order theory); Quantum Hall effect; Nonlinear system; Physics; Quantum; Fractional quantum Hall effect; Quantum mechanics; Quantum spin Hall effect; Vortex; Quantum electrodynamics; Theoretical physics; Mathematics; Electron; Pure mathematics; Mechanics","score_opus":0.021600956896667516,"score_gpt":0.29290516111878423,"score_spread":0.2713042042221167,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2124012452","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.4176003,0.0041052336,0.38327625,0.0047529982,0.0006945622,0.0001211766,0.000112557165,0.00025610015,0.18908076],"genre_scores_gemma":[0.9800597,0.0010388048,0.012277739,0.0003586509,0.00018700366,0.00004381881,0.00002692859,0.000025924403,0.0059814183],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998253,0.00006149624,0.0000066410494,0.000018601924,0.00005542926,0.0000325167],"domain_scores_gemma":[0.99943787,0.00033120558,0.00006523094,0.0000499029,0.000075927564,0.000039860042],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000648673,0.00030146271,0.00046661313,0.00056750904,0.00052803097,0.0010459542,0.00048825162,0.0006224369,0.0032429702],"category_scores_gemma":[0.0015581553,0.00014356468,0.00035699463,0.00025297637,0.0014994143,0.0015338879,0.0011246015,0.0008673882,0.00050717226],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000018932553,0.0000429811,0.00012992532,0.00005766363,0.000005776598,0.000099489116,0.00011426899,0.004163478,0.005954624,0.98463213,0.0006336222,0.0041469797],"study_design_scores_gemma":[0.000008911217,0.000025800668,0.0001163611,0.0000107268825,0.000003703231,0.00011245606,0.000048067443,0.044063605,0.0018739772,0.95222044,0.0015059295,0.000010061407],"about_ca_topic_score_codex":0.00010539218,"about_ca_topic_score_gemma":0.00010778376,"teacher_disagreement_score":0.0032429702,"about_ca_system_score_codex":0.0003539199,"about_ca_system_score_gemma":0.00025761192,"threshold_uncertainty_score":0.01084882},"labels":[],"label_agreement":null},{"id":"W2125379111","doi":"10.1103/physrevb.61.5740","title":"Landauer theory, inelastic scattering, and electron transport in molecular wires","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Molecular Junctions and Nanostructures","field":"Engineering","cited_by":131,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Mesoscopic physics; Inelastic scattering; Physics; Pauli exclusion principle; Scattering; Electron; Scattering theory; Inelastic collision; Condensed matter physics; Elastic scattering; Electron scattering; Quantum mechanics","score_opus":0.0028265322007692997,"score_gpt":0.23041312127965854,"score_spread":0.22758658907888923,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2125379111","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.21783061,0.017655222,0.6444184,0.0046652555,0.0004661233,0.0000703048,0.00019018247,0.00041602863,0.114287816],"genre_scores_gemma":[0.95479214,0.005261866,0.025630536,0.00032141455,0.00017467908,0.00007022009,0.00006687489,0.000088450804,0.013593749],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9997671,0.00006276282,0.000009817222,0.000029005723,0.00008931402,0.000042029442],"domain_scores_gemma":[0.99954766,0.00028449917,0.00004827442,0.00005137257,0.00004852376,0.000019722465],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006920769,0.00036958893,0.0004557527,0.0008634988,0.0005426769,0.0009967482,0.0007408755,0.0008499435,0.002342047],"category_scores_gemma":[0.0014891416,0.0002277658,0.00045658674,0.00072036183,0.0023379526,0.002867036,0.00054109795,0.00074515573,0.00037999806],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00000814493,0.000010427285,0.000118471704,0.000039036204,0.000006048527,0.00008651925,0.00006931481,0.04052414,0.001212558,0.95547056,0.00027850663,0.00217618],"study_design_scores_gemma":[0.0000049117425,0.000017483278,0.00012662743,0.000014220897,0.000005195444,0.00007186926,0.00004045913,0.12605014,0.00091710506,0.87121546,0.0015252038,0.000011311351],"about_ca_topic_score_codex":0.0012860567,"about_ca_topic_score_gemma":0.0010430039,"teacher_disagreement_score":0.002342047,"about_ca_system_score_codex":0.0009989495,"about_ca_system_score_gemma":0.0004781231,"threshold_uncertainty_score":0.007834911},"labels":[],"label_agreement":null},{"id":"W2132711444","doi":"10.1103/physrevb.61.r11886","title":"Conductivity sum rule: Comparison of coherent and incoherent<b><i>c</i></b>-axis coupling","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Sum rule in quantum mechanics; Condensed matter physics; Superfluidity; Physics; Superconductivity; Coupling (piping); Conductivity; Plane (geometry); Sign (mathematics); Order (exchange); Coherent states; Optical conductivity; Kinetic energy; Energy (signal processing); Density of states; Quantum mechanics; Mathematics; Mathematical analysis; Materials science; Geometry","score_opus":0.020370436476728458,"score_gpt":0.31935153133149613,"score_spread":0.29898109485476765,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2132711444","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.843324,0.0007356159,0.12636323,0.00027945125,0.000110247354,0.00007833335,0.00021054434,0.0005747225,0.028323775],"genre_scores_gemma":[0.9851364,0.0001992394,0.012767306,0.00007673917,0.000015268517,0.000047668156,0.00018238739,0.00016118365,0.0014138359],"study_design_codex":"simulation_or_modeling","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9993123,0.0001592539,0.000051953604,0.00006928565,0.00031514835,0.00009220275],"domain_scores_gemma":[0.9981279,0.00073565816,0.0002090794,0.00039301065,0.0003820495,0.00015236708],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012514795,0.00048404603,0.0007887058,0.0012159535,0.00045441877,0.0013302997,0.0015671588,0.0008788046,0.0014965208],"category_scores_gemma":[0.003921516,0.00023739797,0.0006053636,0.0010655051,0.00079400785,0.0012881261,0.00068009883,0.00058130745,0.0003674806],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007262021,0.00031902944,0.015360687,0.00052292907,0.00026244135,0.0013441175,0.00047980587,0.5089544,0.062194794,0.36606956,0.0022547394,0.041511297],"study_design_scores_gemma":[0.000044187243,0.00010017471,0.0022406764,0.000024634845,0.000049646053,0.00027428282,0.00007874471,0.94261914,0.016142143,0.037899155,0.00048280432,0.00004440099],"about_ca_topic_score_codex":0.0011248726,"about_ca_topic_score_gemma":0.0014978047,"teacher_disagreement_score":0.0015671588,"about_ca_system_score_codex":0.00047700718,"about_ca_system_score_gemma":0.00050845207,"threshold_uncertainty_score":0.0066184998},"labels":[],"label_agreement":null},{"id":"W2137308745","doi":"10.1103/physrevb.63.115308","title":"Chaotic dynamics in terahertz-driven semiconductors with negative effective mass","year":2001,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":32,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"","keywords":"Physics; Terahertz radiation; Condensed matter physics; Chaotic; Phonon; Effective mass (spring–mass system); Amplitude; Bifurcation diagram; Phase diagram; Bifurcation; Nonlinear system; Quantum mechanics; Phase (matter)","score_opus":0.007420285076675385,"score_gpt":0.2771530745802023,"score_spread":0.2697327895035269,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2137308745","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.95528394,0.00039084582,0.036532186,0.00014896304,0.000027131859,0.000014060474,0.000025531619,0.00003718586,0.0075402623],"genre_scores_gemma":[0.996666,0.00016919985,0.0024182815,0.000010963851,0.0000074010873,0.000011155141,0.000011246085,0.0000044894527,0.0007012463],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999697,0.000007040332,0.0000012216332,0.0000053592316,0.000010654557,0.000006122688],"domain_scores_gemma":[0.99993336,0.000026503778,0.000017942832,0.000007442123,0.000008412852,0.000006186735],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0000787879,0.00013170937,0.00015363416,0.00015459523,0.00019916699,0.00021646066,0.00022088419,0.00016149251,0.00041887217],"category_scores_gemma":[0.00021872576,0.00008992674,0.00017145395,0.000081489015,0.0005331864,0.0003506926,0.00020260758,0.0001754519,0.00004478422],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010300842,0.000077858866,0.0042215427,0.00016542232,0.00006187254,0.000923757,0.00050090195,0.27512002,0.2065128,0.5013078,0.0005938957,0.010411094],"study_design_scores_gemma":[0.00002070265,0.00006783089,0.0017105051,0.000007671348,0.000015107215,0.00028039643,0.000052437,0.928527,0.018864267,0.048573617,0.0018626542,0.000017865754],"about_ca_topic_score_codex":0.0002468798,"about_ca_topic_score_gemma":0.00018142934,"teacher_disagreement_score":0.00041887217,"about_ca_system_score_codex":0.00021736693,"about_ca_system_score_gemma":0.00010609904,"threshold_uncertainty_score":0.0015770793},"labels":[],"label_agreement":null},{"id":"W2144081937","doi":"10.1103/physrevb.66.174412","title":"Evolution of spin excitations in a gapped antiferromagnet from the quantum to the high-temperature limit","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"National Research Council Canada; Canadian Institute for Advanced Research","funders":"","keywords":"Antiferromagnetism; Condensed matter physics; Limit (mathematics); Physics; Spin (aerodynamics); Quantum; Quantum limit; Zero temperature; Quantum mechanics","score_opus":0.01745123679004437,"score_gpt":0.27061984288576646,"score_spread":0.2531686060957221,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2144081937","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99920124,0.000011867531,0.00033505913,0.000018469864,0.0000011740982,6.57624e-7,0.000007978425,0.000015937361,0.00040763183],"genre_scores_gemma":[0.99927706,0.0000114529585,0.0005045317,0.0000047691974,0.0000010833369,0.0000024456835,0.000020524009,0.000006134415,0.00017203727],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99990714,0.00002138929,0.000003725461,0.00002053789,0.00002008769,0.000027119686],"domain_scores_gemma":[0.99960953,0.00013196153,0.000064451735,0.00005203472,0.00007858522,0.0000634815],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025246435,0.00013756659,0.00015817463,0.00042620685,0.0005617033,0.00065971684,0.00042756624,0.00029075262,0.0014077881],"category_scores_gemma":[0.0010657873,0.00019434246,0.00015807089,0.00028308254,0.00085632724,0.0006756631,0.0003464268,0.0004605802,0.00010084374],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.001238046,0.00049969176,0.040292714,0.00020621902,0.00014407477,0.0016880205,0.0014897297,0.07912378,0.7515638,0.113335654,0.0005966485,0.009821598],"study_design_scores_gemma":[0.00017142482,0.00093720766,0.081274234,0.000056271456,0.0000967817,0.0005873076,0.000753164,0.5861863,0.28596368,0.042095385,0.0017290688,0.00014918935],"about_ca_topic_score_codex":0.0019066192,"about_ca_topic_score_gemma":0.0019332019,"teacher_disagreement_score":0.0019066192,"about_ca_system_score_codex":0.00070407003,"about_ca_system_score_gemma":0.00032275912,"threshold_uncertainty_score":0.0051083565},"labels":[],"label_agreement":null},{"id":"W2145651093","doi":"10.1103/physrevb.65.205302","title":"Surface morphology of GaAs during molecular beam epitaxy growth: Comparison of experimental data with simulations based on continuum growth equations","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Theoretical and Computational Physics","field":"Physics and Astronomy","cited_by":48,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Nabla symbol; Physics; Anisotropy; Lambda; Smoothing; Condensed matter physics; Molecular beam epitaxy; Mathematical physics; Epitaxy; Materials science; Quantum mechanics; Nanotechnology; Mathematics","score_opus":0.026060576621019814,"score_gpt":0.31579883083296967,"score_spread":0.2897382542119499,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2145651093","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99738723,0.00008090747,0.0013547424,0.00004727264,0.000005443266,0.000005198555,0.0002002082,0.00010137305,0.00081764045],"genre_scores_gemma":[0.9988182,0.000064014086,0.0007275383,0.0000057442603,0.0000016174904,0.0000050189506,0.0001791596,0.00001783763,0.00018074567],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999448,0.0000053009176,0.0000028871261,0.000011363141,0.000024515683,0.000011138259],"domain_scores_gemma":[0.99978834,0.00008695925,0.000031861244,0.000025557074,0.0000544769,0.000012844556],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012624793,0.00021170764,0.00018216223,0.00021549035,0.0002364697,0.0003614915,0.0003619296,0.0003199891,0.00081616157],"category_scores_gemma":[0.0005675964,0.00020027414,0.0002568203,0.00023216826,0.00026246495,0.00025364297,0.000109910834,0.00028145654,0.00012537684],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000617968,0.00019151349,0.03384429,0.0002537708,0.00009148853,0.00082269043,0.00048701113,0.22816582,0.7196636,0.0020446642,0.0007490953,0.013068161],"study_design_scores_gemma":[0.00004959769,0.00020235404,0.08013171,0.000013846876,0.000024885117,0.00014369687,0.00016043683,0.7578515,0.16017778,0.00046338476,0.0007452439,0.00003557266],"about_ca_topic_score_codex":0.0093251495,"about_ca_topic_score_gemma":0.006595487,"teacher_disagreement_score":0.0093251495,"about_ca_system_score_codex":0.0007041217,"about_ca_system_score_gemma":0.00021579588,"threshold_uncertainty_score":0.018541753},"labels":[],"label_agreement":null},{"id":"W2146017699","doi":"10.1103/physrevb.66.161102","title":"Ultrafast band-edge tuning of a two-dimensional silicon photonic crystal via free-carrier injection","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":176,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Fluence; Ultrashort pulse; Materials science; Silicon; Optics; Photonic crystal; Absorption edge; Absorption (acoustics); Free carrier absorption; Beam (structure); Optoelectronics; Atomic physics; Physics; Band gap; Laser","score_opus":0.013755912306311591,"score_gpt":0.27655290835922924,"score_spread":0.2627969960529177,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2146017699","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99361426,0.00017598722,0.0042257016,0.00005259841,0.00001939706,0.000008927904,0.00003408286,0.00010623691,0.0017628993],"genre_scores_gemma":[0.9957486,0.00009172442,0.0032768666,0.000016672586,0.0000048216934,0.000008134198,0.000024387902,0.000013258993,0.00081563264],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999343,0.000005449642,0.000002437435,0.00001236022,0.0000297963,0.000015729362],"domain_scores_gemma":[0.9998447,0.00005887218,0.000043004005,0.00001653277,0.000020433672,0.000016483224],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000102156744,0.00016876665,0.00013595671,0.00013740559,0.00018235653,0.00023894782,0.00028991888,0.00022548728,0.0006837532],"category_scores_gemma":[0.00020136,0.00014219274,0.000100979225,0.00011198288,0.00034470035,0.00022936254,0.00024735762,0.0002605459,0.000118879536],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000056930054,0.000023643403,0.00019519094,0.000024280242,0.0000030120564,0.000042968186,0.000025905976,0.00036273463,0.9960247,0.00071983563,0.000049783393,0.0024711336],"study_design_scores_gemma":[0.000020882502,0.00007478498,0.00090155436,0.0000023499874,0.0000027876229,0.00006875416,0.0000076014294,0.006163101,0.99199003,0.00014492926,0.0006170444,0.000006036571],"about_ca_topic_score_codex":0.00047323413,"about_ca_topic_score_gemma":0.0010397077,"teacher_disagreement_score":0.0006837532,"about_ca_system_score_codex":0.00030260044,"about_ca_system_score_gemma":0.00026002797,"threshold_uncertainty_score":0.0022873878},"labels":[],"label_agreement":null},{"id":"W2148504963","doi":"10.1103/physrevb.66.054535","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">QED</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>theory of pairing pseudogap in cuprates: From<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>d</mml:mi></mml:math>-wave superconductor to antiferromagnet via an algebraic Fermi liquid","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":246,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Pseudogap; Physics; Superconductivity; Condensed matter physics; Quasiparticle; Fermi liquid theory; Quantum mechanics; Cuprate","score_opus":0.02448926360817697,"score_gpt":0.25243935384656013,"score_spread":0.22795009023838317,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2148504963","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.014419776,0.00093608047,0.48609722,0.0077523286,0.0014778161,0.0003576571,0.006777783,0.009721312,0.47245997],"genre_scores_gemma":[0.16427647,0.0045535597,0.4682426,0.0025187694,0.0010171412,0.00076140993,0.009769231,0.009195132,0.3396657],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99981934,0.000034036017,0.000014707809,0.000030312533,0.00007521465,0.000026518555],"domain_scores_gemma":[0.99984086,0.000024421804,0.000017960343,0.00005316336,0.00003929602,0.000024220293],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000403865,0.0007284811,0.00050719205,0.0012144488,0.0010709658,0.0031018695,0.0015385045,0.0013428376,0.068506114],"category_scores_gemma":[0.0005705767,0.00042315724,0.0010710985,0.0016620061,0.0013629275,0.002973025,0.0010385133,0.001895642,0.032543708],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000020836113,0.000032663163,0.00011590769,0.000122905,0.000005407464,0.0001535936,0.00015567645,0.0016199164,0.0047189645,0.9040928,0.066184774,0.022776559],"study_design_scores_gemma":[0.00004410808,0.000044842433,0.00046507583,0.00006900819,0.000011184541,0.00042840213,0.00011934764,0.027337244,0.006202304,0.37472284,0.5904882,0.000067493245],"about_ca_topic_score_codex":0.0037276503,"about_ca_topic_score_gemma":0.0056565413,"teacher_disagreement_score":0.068506114,"about_ca_system_score_codex":0.0014580479,"about_ca_system_score_gemma":0.0009282305,"threshold_uncertainty_score":0.2291758},"labels":[],"label_agreement":null},{"id":"W2149215931","doi":"10.1103/physrevb.66.155112","title":"Ultrafast dynamics of lattice relaxation of excitons in quasi-one-dimensional halogen-bridged platinum complexes","year":2002,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Organic and Molecular Conductors Research","field":"Materials Science","cited_by":55,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Canada Excellence Research Chairs, Government of Canada","keywords":"Luminescence; Halogen; Exciton; Phonon; Relaxation (psychology); Platinum; Spectroscopy; Materials science; Atomic physics; Physics; Lattice (music); Molecular physics; Condensed matter physics; Chemistry; Optoelectronics; Quantum mechanics","score_opus":0.03386936908767246,"score_gpt":0.305131182144998,"score_spread":0.27126181305732555,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2149215931","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9990982,0.00007128297,0.00045898935,0.000015315878,0.0000027568435,0.0000017459973,0.000029905155,0.000015502033,0.00030632722],"genre_scores_gemma":[0.9993036,0.00006352116,0.00029624283,0.0000062198433,8.378622e-7,0.0000056858794,0.000053638272,0.0000070222286,0.00026332558],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999634,0.0000036254294,0.0000015796197,0.0000125310435,0.000010841808,0.000007985661],"domain_scores_gemma":[0.9999274,0.000025943447,0.00002132229,0.000006825791,0.000007798643,0.000010716725],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000060879716,0.00015746719,0.00013971546,0.00010886265,0.00017367493,0.00023034064,0.00033485686,0.00016708842,0.0012565929],"category_scores_gemma":[0.00021676261,0.00012647554,0.00009555723,0.000105156876,0.0002593659,0.00027928015,0.00018677702,0.00037734298,0.000087691114],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002601846,0.000082238505,0.0023676693,0.00010800743,0.000031426465,0.00018503948,0.0002735705,0.008191898,0.9803822,0.0023745063,0.00016105587,0.005582188],"study_design_scores_gemma":[0.0001008692,0.0006265055,0.024922535,0.000018113311,0.00003543693,0.000254156,0.0002984601,0.15297392,0.8181299,0.0010780081,0.0014982476,0.000063942454],"about_ca_topic_score_codex":0.001168163,"about_ca_topic_score_gemma":0.0011820552,"teacher_disagreement_score":0.0012565929,"about_ca_system_score_codex":0.00047402372,"about_ca_system_score_gemma":0.00013806358,"threshold_uncertainty_score":0.004203677},"labels":[],"label_agreement":null},{"id":"W2149838557","doi":"10.1103/physrevb.67.134408","title":"Electronic structure of magnetic molecules<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">V</mml:mi></mml:mrow><mml:mrow><mml:mn>15</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>:</mml:mo></mml:math>  LSDA+U calculations, x-ray emissions, and photoelectron spectra","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetism in coordination complexes","field":"Materials Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"","keywords":"Electronic structure; Vanadium; Valence (chemistry); Molecule; Crystallography; Chemistry; Physics; Computational chemistry; Inorganic chemistry; Quantum mechanics","score_opus":0.011608779998364049,"score_gpt":0.25049080558667736,"score_spread":0.2388820255883133,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2149838557","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.90519434,0.002806606,0.0099963695,0.0013770344,0.0001382807,0.00006740703,0.001589113,0.00040704166,0.07842392],"genre_scores_gemma":[0.9782931,0.00079236325,0.0058474257,0.00011916177,0.000031443382,0.000068393485,0.0020473949,0.000095281335,0.012705299],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99988925,0.000020275578,0.000003129083,0.000017324783,0.000037507856,0.00003246765],"domain_scores_gemma":[0.9998696,0.000033696277,0.00002264087,0.000023392473,0.000036633166,0.000014064874],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019822652,0.00033324605,0.0005293379,0.00063604116,0.0015418981,0.0010433701,0.0011432322,0.0007156531,0.012761699],"category_scores_gemma":[0.00030945125,0.00020322517,0.00028659246,0.0006443998,0.00052229,0.0004877792,0.0003558139,0.0006246423,0.0013651061],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0018898908,0.00086596294,0.010029574,0.0019422314,0.0002871471,0.0009705014,0.0008089784,0.1297675,0.2677911,0.4969866,0.03194998,0.05671056],"study_design_scores_gemma":[0.00043022883,0.0017150227,0.019963063,0.00014541861,0.00016157262,0.000576147,0.0010214559,0.7102966,0.18543798,0.032210477,0.047904577,0.00013743466],"about_ca_topic_score_codex":0.0035394346,"about_ca_topic_score_gemma":0.005354944,"teacher_disagreement_score":0.012761699,"about_ca_system_score_codex":0.0013099599,"about_ca_system_score_gemma":0.00045819953,"threshold_uncertainty_score":0.042692184},"labels":[],"label_agreement":null},{"id":"W2154353687","doi":"10.1103/physrevb.61.r2389","title":"Tunable two-dimensional photonic crystals using liquid crystal infiltration","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Photonic Crystals and Applications","field":"Physics and Astronomy","cited_by":378,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Liquid crystal; Materials science; Photonic crystal; Birefringence; Band gap; Optics; Refractive index; Condensed matter physics; Wavelength; Isotropy; Molecular physics; Optoelectronics; Physics","score_opus":0.014996099091283242,"score_gpt":0.31355806497937705,"score_spread":0.2985619658880938,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2154353687","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9869279,0.00030944715,0.009292448,0.000106263455,0.000023254595,0.000023508526,0.000059641832,0.00024587795,0.0030115978],"genre_scores_gemma":[0.9928767,0.00021036563,0.005677064,0.000044787503,0.000007851255,0.000040122915,0.000053782383,0.00005841826,0.0010308782],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99975353,0.000032264725,0.0000139996,0.000049811188,0.000097167314,0.00005335634],"domain_scores_gemma":[0.9998386,0.00004620889,0.000065049,0.000015672129,0.000018619741,0.000015890293],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018106485,0.000308724,0.00029576023,0.00016394236,0.00017107592,0.0005539651,0.0003149537,0.0003258506,0.00042069695],"category_scores_gemma":[0.00019564746,0.00031890854,0.00017236057,0.00021528827,0.0005277507,0.00040104994,0.0007076734,0.00052873406,0.00017656121],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000038826736,0.000012564235,0.000071846254,0.000025202111,0.000002354151,0.000037313817,0.000028901612,0.0002416079,0.9980805,0.00041139277,0.000027850765,0.0010216555],"study_design_scores_gemma":[0.00002275728,0.000038760867,0.00029983872,0.0000032975968,0.0000031927557,0.00005251276,0.000008474055,0.0035191008,0.99517256,0.000049003975,0.00082284404,0.000007562685],"about_ca_topic_score_codex":0.00039932996,"about_ca_topic_score_gemma":0.0008168918,"teacher_disagreement_score":0.0005539651,"about_ca_system_score_codex":0.00044124346,"about_ca_system_score_gemma":0.00021830428,"threshold_uncertainty_score":0.003201425},"labels":[],"label_agreement":null},{"id":"W2157131428","doi":"10.1103/physrevb.68.165102","title":"Self-consistent modification to the electron density of states due to electron-phonon coupling in metals","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"High-pressure geophysics and materials","field":"Earth and Planetary Sciences","cited_by":29,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Condensed matter physics; Electron; Polaron; Phonon; Coupling (piping); Coupling strength; Physics; Crossover; Quantum mechanics; Materials science","score_opus":0.012603480832471918,"score_gpt":0.2669141826967049,"score_spread":0.254310701864233,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2157131428","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.84952074,0.0015949664,0.1262179,0.00087481376,0.00039905164,0.00008679894,0.00007329733,0.00051723333,0.020715205],"genre_scores_gemma":[0.9859676,0.000567967,0.009295247,0.00012641864,0.000060552185,0.000051536274,0.000040639516,0.000058989004,0.0038311605],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99976116,0.00007556357,0.0000104599085,0.000023654478,0.000097434,0.000031610685],"domain_scores_gemma":[0.99949694,0.00019671097,0.000053965825,0.00015308706,0.00006382982,0.00003543265],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00076173694,0.0002759847,0.00064212835,0.00068701385,0.0006430375,0.0010885291,0.0016584125,0.0009351198,0.0011315655],"category_scores_gemma":[0.001967739,0.00046905724,0.00067238294,0.00034338378,0.0019472148,0.0009508664,0.000949383,0.0007449076,0.00018217613],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017644465,0.00018441016,0.0033232996,0.00018438166,0.00007830453,0.0007291345,0.00043176967,0.21811095,0.033074718,0.72870255,0.0014549885,0.01354895],"study_design_scores_gemma":[0.00002894772,0.000054980348,0.0013535926,0.00001708489,0.000015641643,0.000202823,0.000053969554,0.8340385,0.004724874,0.1584459,0.0010330541,0.000030688025],"about_ca_topic_score_codex":0.00089718465,"about_ca_topic_score_gemma":0.0009886718,"teacher_disagreement_score":0.0016584125,"about_ca_system_score_codex":0.00055358827,"about_ca_system_score_gemma":0.0004371325,"threshold_uncertainty_score":0.004028499},"labels":[],"label_agreement":null},{"id":"W2171105783","doi":"10.1103/physrevb.68.195110","title":"Absence of U(1) spin liquids in two dimensions","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":46,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Spinon; Physics; Spin (aerodynamics); Gauge theory; Higgs boson; Instanton; Fermi surface; Symmetry (geometry); Theoretical physics; Mathematical physics; Quantum mechanics; Electron; Mathematics; Geometry; Quantum","score_opus":0.01566569894307017,"score_gpt":0.3287279527983366,"score_spread":0.3130622538552664,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2171105783","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.93453526,0.0012568501,0.008240651,0.0018623587,0.00013963442,0.000021624412,0.00011792739,0.00033219624,0.053493425],"genre_scores_gemma":[0.9966414,0.00019744603,0.0014583041,0.0001468445,0.0000443829,0.000020628297,0.00005610316,0.000013897529,0.0014209636],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9996718,0.00008529582,0.00001889131,0.000045290337,0.00010045217,0.0000781701],"domain_scores_gemma":[0.9993736,0.00016115038,0.00016436359,0.00011286196,0.000106897955,0.000081113],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037506386,0.00026211582,0.0006187859,0.0011645389,0.0015215361,0.0028430545,0.0006468805,0.0016887747,0.0017939705],"category_scores_gemma":[0.0015855544,0.00036698452,0.00033958285,0.00056284375,0.0021863075,0.0020080234,0.0010014166,0.00077963417,0.00021885303],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010276415,0.00004564656,0.0014159917,0.0001022124,0.000014787984,0.00035965457,0.00028855598,0.0013274954,0.0066492837,0.9830263,0.0014403294,0.0052269576],"study_design_scores_gemma":[0.00013421875,0.00011650544,0.0023486416,0.00007712505,0.000034176086,0.0014346379,0.00036584606,0.030396402,0.006543708,0.94979507,0.008695057,0.00005861223],"about_ca_topic_score_codex":0.0013440326,"about_ca_topic_score_gemma":0.0012157231,"teacher_disagreement_score":0.0028430545,"about_ca_system_score_codex":0.00074065453,"about_ca_system_score_gemma":0.0006964337,"threshold_uncertainty_score":0.0060014725},"labels":[],"label_agreement":null},{"id":"W2172107970","doi":"10.1103/physrevb.67.184419","title":"Effect of a magnetic field on the spin- and charge-density-wave order in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>1.45</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nd</mml:mi></mml:mrow><mml:mrow><mml:mn>0.4</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>0.15</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":49,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Order (exchange); Physics; Spins; Intensity (physics); Neutron diffraction; Condensed matter physics; Charge (physics); Superconductivity; Field (mathematics); Spin (aerodynamics); Magnetic field; Diffraction; Particle physics; Quantum mechanics","score_opus":0.014570279017735891,"score_gpt":0.24386932392670857,"score_spread":0.22929904490897268,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2172107970","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.89888424,0.0015487579,0.00370809,0.0024621403,0.00097264495,0.000049329996,0.002986736,0.0016016648,0.08778639],"genre_scores_gemma":[0.9830325,0.0005046922,0.0021551603,0.00025300455,0.000054510037,0.000024865167,0.0014396182,0.0003982876,0.012137209],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99980503,0.000027312582,0.00000659097,0.000025512765,0.000047567304,0.000088036955],"domain_scores_gemma":[0.99930954,0.00030079528,0.00007793897,0.000059110866,0.00013157853,0.000121060206],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003466883,0.00030701866,0.0003535653,0.0006140516,0.001156668,0.001033209,0.00073660817,0.00047012232,0.055027947],"category_scores_gemma":[0.0011129312,0.0002997955,0.00020394532,0.00057136716,0.0005254959,0.000713423,0.00038396436,0.0011698623,0.0028939217],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.011221448,0.0014988265,0.007200315,0.0016670106,0.00021533755,0.0017054914,0.0011931609,0.025302919,0.70973706,0.059123993,0.1316169,0.049517594],"study_design_scores_gemma":[0.0008504864,0.0019352229,0.04611594,0.00027235984,0.00013547002,0.00048579098,0.0016550834,0.16049618,0.7188533,0.015039413,0.05381257,0.00034816095],"about_ca_topic_score_codex":0.006353836,"about_ca_topic_score_gemma":0.008562678,"teacher_disagreement_score":0.055027947,"about_ca_system_score_codex":0.0009000148,"about_ca_system_score_gemma":0.0008062031,"threshold_uncertainty_score":0.1840868},"labels":[],"label_agreement":null},{"id":"W2198045018","doi":"10.1103/physrevb.61.12342","title":"Spin-lattice relaxation in the mixed state of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn><mml:mi>−</mml:mi><mml:mi>δ</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>and Doppler-shifted<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mi>d</mml:mi><mml:mo>−</mml:mo><mml:mi mathvariant=\"normal\">wave</mml:mi></mml:math>quasiparticles","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Quasiparticle; Condensed matter physics; Semiclassical physics; Physics; Relaxation (psychology); Scattering; Quantum mechanics; Superconductivity","score_opus":0.01797460962469896,"score_gpt":0.2471074221961453,"score_spread":0.22913281257144633,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2198045018","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8217279,0.0020353158,0.021992851,0.0029760427,0.0008940759,0.00007285202,0.0067812353,0.0025249457,0.14099483],"genre_scores_gemma":[0.96540105,0.00030006445,0.0044488707,0.0003988447,0.000039235838,0.000061621235,0.0033282405,0.0005538335,0.025468217],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997801,0.000026675078,0.0000054121037,0.00005797119,0.000055360353,0.000074621275],"domain_scores_gemma":[0.9997745,0.000049434206,0.000035395067,0.00004233363,0.000047101898,0.000051291496],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030205652,0.0003286704,0.0003822775,0.000435965,0.0010817379,0.0015019551,0.0009265049,0.0005178084,0.046650413],"category_scores_gemma":[0.0007873639,0.00036651758,0.00023518919,0.00059692306,0.00044262165,0.0013253872,0.00055897253,0.0015575695,0.0026021341],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.008412756,0.0010644664,0.007858504,0.0015859351,0.0006061607,0.0016405126,0.0017603338,0.018391175,0.5176688,0.23002946,0.15638651,0.05459551],"study_design_scores_gemma":[0.0010013361,0.0023272592,0.0363964,0.0003901781,0.0002700425,0.0007364157,0.0025009897,0.21613508,0.583667,0.04450924,0.11152972,0.0005364279],"about_ca_topic_score_codex":0.0060436907,"about_ca_topic_score_gemma":0.008848877,"teacher_disagreement_score":0.046650413,"about_ca_system_score_codex":0.001174326,"about_ca_system_score_gemma":0.0006995808,"threshold_uncertainty_score":0.15606117},"labels":[],"label_agreement":null},{"id":"W2233074142","doi":"10.1103/physrevb.65.174405","title":"Magnetic structures of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">RbCuCl</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>in a transverse field","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Japan Society for the Promotion of Science; Natural Sciences and Engineering Research Council of Canada","keywords":"Antiferromagnetism; Magnetization; Condensed matter physics; Field (mathematics); Phase (matter); Physics; Context (archaeology); Magnetic field; Quantum mechanics; Mathematics; Geology","score_opus":0.01697076126230341,"score_gpt":0.24583352903599995,"score_spread":0.22886276777369655,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2233074142","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9511645,0.00025930567,0.005653743,0.00045051955,0.000057606365,0.000029060428,0.0005599563,0.00029557574,0.04152978],"genre_scores_gemma":[0.98653203,0.000057116016,0.0052271266,0.00006981841,0.000008856376,0.000025218882,0.0006609414,0.00003806126,0.0073808804],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99993765,0.000008953637,0.0000022787842,0.000012297065,0.000017813194,0.000021072387],"domain_scores_gemma":[0.9998543,0.00001993862,0.000026983744,0.000021140817,0.00004880839,0.000028856331],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007432361,0.00011922373,0.00012271332,0.000321318,0.00045102186,0.0006571405,0.0003698416,0.00045394147,0.007903526],"category_scores_gemma":[0.0004166565,0.00013181604,0.000111988644,0.00026535627,0.00034874704,0.00028420644,0.00016812178,0.0004113382,0.00092621497],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0008198945,0.00019020596,0.0034100034,0.00045036242,0.00003267583,0.00082361774,0.0006486611,0.010417244,0.7791788,0.17312862,0.012650612,0.018249243],"study_design_scores_gemma":[0.00026820728,0.0013817996,0.026820075,0.000061710736,0.00007043898,0.0010348244,0.00082884484,0.12186004,0.7776183,0.02438,0.045569718,0.000106040556],"about_ca_topic_score_codex":0.0022087565,"about_ca_topic_score_gemma":0.0027311058,"teacher_disagreement_score":0.007903526,"about_ca_system_score_codex":0.00068706693,"about_ca_system_score_gemma":0.00034834945,"threshold_uncertainty_score":0.026439905},"labels":[],"label_agreement":null},{"id":"W2249077044","doi":"10.1103/physrevb.65.220506","title":"Elastic tensor of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">RuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Resonant ultrasound spectroscopy; Debye; Debye model; Mathematics; Nuclear magnetic resonance; Physics; Materials science; Thermodynamics; Condensed matter physics; Elastic modulus","score_opus":0.017025032084298605,"score_gpt":0.250371445624163,"score_spread":0.2333464135398644,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2249077044","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.13725059,0.0014650518,0.30146256,0.0032966102,0.0039471667,0.00037854497,0.047554873,0.008212313,0.49643224],"genre_scores_gemma":[0.3084823,0.0021055727,0.08792074,0.001004083,0.00027133853,0.0002597548,0.034185953,0.012595218,0.55317503],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99931014,0.00003886612,0.000027448912,0.00014404274,0.00039304863,0.00008654866],"domain_scores_gemma":[0.9989881,0.00018609413,0.00008528888,0.00024681864,0.0004283712,0.000065307184],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005340167,0.0014520059,0.0008175304,0.00140942,0.00089410227,0.0017989537,0.0014017292,0.001397271,0.20196465],"category_scores_gemma":[0.001759745,0.00075089297,0.00082360464,0.001434019,0.00082195154,0.0029610293,0.0010600206,0.0029854777,0.047415394],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004101653,0.00025611933,0.00263251,0.001427665,0.00019321896,0.0012029094,0.0006825961,0.022151213,0.35381418,0.326069,0.18952125,0.101639174],"study_design_scores_gemma":[0.000064920634,0.0001718308,0.019784931,0.00020784035,0.00012514448,0.0013949791,0.00076139416,0.10486226,0.2044173,0.047080588,0.620577,0.0005518014],"about_ca_topic_score_codex":0.0059403144,"about_ca_topic_score_gemma":0.0062642097,"teacher_disagreement_score":0.20196465,"about_ca_system_score_codex":0.0013077883,"about_ca_system_score_gemma":0.0018218827,"threshold_uncertainty_score":0.67563903},"labels":[],"label_agreement":null},{"id":"W2260468889","doi":"10.1103/physrevb.64.172513","title":"Constraints from<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>and the isotope effect in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MgB</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Superconductivity in MgB2 and Alloys","field":"Physics and Astronomy","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Value (mathematics); Function (biology); Algorithm; Mathematics; Physics; Statistics; Biology","score_opus":0.015996629686729453,"score_gpt":0.25325743324676936,"score_spread":0.2372608035600399,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2260468889","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0025240402,0.0007386956,0.07512865,0.0074167205,0.004311324,0.0011336191,0.094890974,0.01930824,0.79454774],"genre_scores_gemma":[0.040492874,0.0022441496,0.10035157,0.009356752,0.0012330216,0.0028814846,0.1716864,0.055480327,0.61627346],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9948314,0.0010100211,0.00045649512,0.0008746858,0.0021564262,0.00067112147],"domain_scores_gemma":[0.99492127,0.0014805475,0.00025394306,0.0014141214,0.0016487752,0.00028129126],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0034475927,0.003751842,0.0024353734,0.002878002,0.00438185,0.010304827,0.00593306,0.006230633,0.45082244],"category_scores_gemma":[0.013381071,0.0028750966,0.0040627397,0.004360343,0.0021061362,0.013188051,0.0046166354,0.006623953,0.28167003],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002817867,0.00012003673,0.00038450203,0.0004599991,0.000038264938,0.00024962274,0.00029958645,0.001420624,0.0016524015,0.105551325,0.86650246,0.023039453],"study_design_scores_gemma":[0.00004278092,0.000013210473,0.00022128159,0.00009460247,0.000017571609,0.00007585475,0.00011018859,0.00090453436,0.0020692206,0.016984947,0.97942114,0.000044570897],"about_ca_topic_score_codex":0.043476738,"about_ca_topic_score_gemma":0.060743928,"teacher_disagreement_score":0.45082244,"about_ca_system_score_codex":0.0057601426,"about_ca_system_score_gemma":0.005933434,"threshold_uncertainty_score":0.7833351},"labels":[],"label_agreement":null},{"id":"W2264069377","doi":"10.1103/physrevb.61.12134","title":"Spin-1 ladder: A bosonization study","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":33,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Bosonization; Physics; Majorana fermion; Ising model; Spin (aerodynamics); Antiferromagnetism; Renormalization group; Condensed matter physics; Fermion; Coupling (piping); Quantum mechanics; MAJORANA; Materials science","score_opus":0.011561621243105778,"score_gpt":0.3050751374981288,"score_spread":0.29351351625502303,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2264069377","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.85310763,0.0010019932,0.09213732,0.0010487309,0.000081842954,0.00008086516,0.00007047033,0.00013627263,0.052334893],"genre_scores_gemma":[0.9832153,0.00033471975,0.013081111,0.00010197916,0.000024153249,0.000036783043,0.000043586984,0.000016886162,0.0031454826],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99988496,0.000035447993,0.000005675612,0.000014998422,0.000030978943,0.00002780639],"domain_scores_gemma":[0.9997683,0.00006365612,0.000047746216,0.00005073144,0.000029151124,0.000040260173],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029727464,0.000293457,0.00037227178,0.00070823706,0.00083673827,0.0008751345,0.0007985207,0.0008420784,0.0031539942],"category_scores_gemma":[0.00066899334,0.00014147029,0.00038338095,0.0005465012,0.0010636005,0.0014434487,0.0006571174,0.0006731042,0.00032758617],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000018942297,0.000059739996,0.00049348053,0.000042847987,0.0000072894213,0.00024086174,0.0001644387,0.010060904,0.005152135,0.9802356,0.00021248474,0.0033113975],"study_design_scores_gemma":[0.000037127393,0.00009873107,0.0006917751,0.00004617958,0.000013845605,0.0004074061,0.00016621106,0.19496052,0.0023061426,0.79859614,0.00265652,0.000019378142],"about_ca_topic_score_codex":0.00069497543,"about_ca_topic_score_gemma":0.0007884203,"teacher_disagreement_score":0.0031539942,"about_ca_system_score_codex":0.00059094466,"about_ca_system_score_gemma":0.0005513455,"threshold_uncertainty_score":0.010551095},"labels":[],"label_agreement":null},{"id":"W2275795051","doi":"10.1103/physrevb.67.214420","title":"Static magnetic order in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Na</mml:mi></mml:mrow><mml:mrow><mml:mn>0.75</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CoO</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>detected by muon spin rotation and relaxation","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Thermoelectric Materials and Devices","field":"Materials Science","cited_by":110,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"National Research Council Canada; TRIUMF; Natural Sciences and Engineering Research Council of Canada; Canadian Institute for Advanced Research","keywords":"Muon spin spectroscopy; Physics; Muon; Condensed matter physics; Order (exchange); Magnetism; Crystallography; Relaxation (psychology); Impurity; Nuclear magnetic resonance; Chemistry; Quantum mechanics","score_opus":0.012444184642845824,"score_gpt":0.25013989776386203,"score_spread":0.2376957131210162,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2275795051","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.14076117,0.001035275,0.07148196,0.002502734,0.0013692955,0.00021939671,0.05094313,0.0397347,0.69195235],"genre_scores_gemma":[0.34766462,0.0011243519,0.039691687,0.0006811996,0.0001460508,0.00018923836,0.058348924,0.017772602,0.53438133],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997825,0.000017202394,0.000014303128,0.0000499869,0.000095573,0.00004038723],"domain_scores_gemma":[0.9996822,0.000070380964,0.000027296703,0.00008954343,0.000089162095,0.00004141992],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020683109,0.0005313265,0.00042835335,0.00086284283,0.0010800991,0.0019901132,0.0006427287,0.00048081137,0.22233246],"category_scores_gemma":[0.0005276061,0.0005133002,0.0002489855,0.0008351782,0.00033272608,0.001705112,0.00061977335,0.0012389071,0.055385172],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00098466,0.0003059239,0.002568649,0.00074742147,0.000042989912,0.00060948945,0.0009101611,0.0019321528,0.39605832,0.0812277,0.38088217,0.13373034],"study_design_scores_gemma":[0.00014064691,0.00015839528,0.006089312,0.000054155636,0.000029579764,0.00037905973,0.0002464871,0.0074934643,0.30881926,0.009028652,0.6674657,0.00009527789],"about_ca_topic_score_codex":0.005355673,"about_ca_topic_score_gemma":0.011978325,"teacher_disagreement_score":0.22233246,"about_ca_system_score_codex":0.0012630497,"about_ca_system_score_gemma":0.000748285,"threshold_uncertainty_score":0.7437762},"labels":[],"label_agreement":null},{"id":"W2281682913","doi":"10.1103/physrevb.66.054516","title":"Doping dependence of the superconducting gap in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Bi</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CaCu</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>8</mml:mn><mml:mo>+</mml:mo><mml:mi>δ</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Physics; Condensed matter physics; Superconductivity; Doping; Quasiparticle; Raman spectroscopy; Quantum mechanics","score_opus":0.022836098405311797,"score_gpt":0.24952468051108592,"score_spread":0.22668858210577414,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2281682913","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.903485,0.0027524373,0.0024463516,0.0017617957,0.00058583764,0.000033646844,0.0027853653,0.0010304712,0.08511923],"genre_scores_gemma":[0.9833445,0.0005967081,0.0013468105,0.00019041749,0.00004551634,0.000033838132,0.0019183365,0.0003343962,0.012189574],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99968576,0.000051280782,0.0000142327735,0.00005148699,0.00010667568,0.000090590445],"domain_scores_gemma":[0.9991135,0.00034376408,0.00011783024,0.00006410737,0.0002654406,0.00009533824],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029868516,0.00022114697,0.00032701952,0.0006043608,0.00071458414,0.0010803821,0.000571921,0.0006879872,0.019346794],"category_scores_gemma":[0.0012412327,0.0002509194,0.00013585135,0.00047161203,0.00035247844,0.00056545995,0.0003839658,0.0008833682,0.002635276],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0022908521,0.0003758605,0.0064914506,0.0009255756,0.000112393376,0.00069990824,0.0011949486,0.001918837,0.8654348,0.036396008,0.058491107,0.025668265],"study_design_scores_gemma":[0.00008833047,0.00077796634,0.026424393,0.00021494468,0.00007320982,0.00029812756,0.0006585199,0.015877288,0.91256505,0.0029539256,0.0399998,0.00006843365],"about_ca_topic_score_codex":0.0038291079,"about_ca_topic_score_gemma":0.007953996,"teacher_disagreement_score":0.019346794,"about_ca_system_score_codex":0.0008942684,"about_ca_system_score_gemma":0.0005489222,"threshold_uncertainty_score":0.064721525},"labels":[],"label_agreement":null},{"id":"W2314019738","doi":"10.1103/physrevb.65.153106","title":"Electronic structure of alkali-metal-doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>M</mml:mi></mml:mrow><mml:mrow><mml:mn>8</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Si</mml:mi></mml:mrow><mml:mrow><mml:mn>46</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math><mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mi>M</mml:mi><mml:mo>=</mml:mo><mml:mi mathvariant=\"normal\">Na</mml:mi><mml:mo>,</mml:mo><mml:mi mathvariant=\"normal\">K</mml:mi><mml:mo>)</mml:mo></mml:math>clathrates","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Steacie Institute for Molecular Sciences; University of Saskatchewan","funders":"","keywords":"Alkali metal; Doping; Physics; Crystallography; Materials science; Spectral line; Metal; Analytical Chemistry (journal); Atomic physics; Condensed matter physics; Chemistry; Quantum mechanics","score_opus":0.01528256305514846,"score_gpt":0.24365448624689445,"score_spread":0.22837192319174598,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2314019738","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8754196,0.0041131065,0.0031068283,0.0033157852,0.0007267258,0.00002947911,0.010538417,0.0005955307,0.10215446],"genre_scores_gemma":[0.9444058,0.0014348065,0.001983469,0.00054117304,0.000052463172,0.000069032016,0.012055552,0.00022177125,0.039235916],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99981874,0.000011707843,0.0000060853254,0.000038728314,0.000049179736,0.000075585296],"domain_scores_gemma":[0.99985707,0.000036036647,0.000019543797,0.000020857327,0.000045348395,0.000021174106],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020877656,0.00053741393,0.0007032124,0.00070794317,0.0013732094,0.0013243001,0.0016988203,0.001973235,0.044666648],"category_scores_gemma":[0.00037923432,0.0003367028,0.0003710475,0.0013330366,0.0006203567,0.0007505843,0.00044493418,0.0010884259,0.0035890753],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.005668009,0.0008154865,0.008796845,0.0033932945,0.00045735657,0.0024789248,0.001429987,0.027770303,0.5958389,0.11326051,0.18361183,0.056478575],"study_design_scores_gemma":[0.00049135386,0.0030910654,0.05538046,0.000761468,0.0003552458,0.0012328578,0.0046281777,0.20684755,0.5859204,0.020993315,0.1196775,0.000620606],"about_ca_topic_score_codex":0.0075699794,"about_ca_topic_score_gemma":0.0130899595,"teacher_disagreement_score":0.044666648,"about_ca_system_score_codex":0.0021027946,"about_ca_system_score_gemma":0.0004411181,"threshold_uncertainty_score":0.14942485},"labels":[],"label_agreement":null},{"id":"W2314992151","doi":"10.1103/physrevb.62.12241","title":"Nuclear orientation of radioactive<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow/><mml:mrow><mml:mn>56</mml:mn></mml:mrow></mml:msup></mml:mrow><mml:mi mathvariant=\"normal\">Mn</mml:mi></mml:math>ions implanted in the insulators<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MnCl</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi>⋅</mml:mi><mml:mn>4</mml:mn><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">H</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:math>and<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CoCl</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi>⋅</mml:mi><mml:mn>6</mml:mn><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">H</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Crystal Structures and Properties","field":"Materials Science","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada; Université Catholique de Louvain","keywords":"Orientation (vector space); Hyperfine structure; Antiferromagnetism; Physics; Crystallography; Anisotropy; Spins; Condensed matter physics; Atomic physics; Chemistry; Geometry; Quantum mechanics; Mathematics","score_opus":0.015590101674878867,"score_gpt":0.24608591766585083,"score_spread":0.23049581599097196,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2314992151","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.40756738,0.002304315,0.09946847,0.0029732378,0.0011651814,0.00024230471,0.022391912,0.0050793486,0.45880792],"genre_scores_gemma":[0.6288393,0.0030308312,0.043026164,0.000835628,0.00007634643,0.0002528602,0.026279781,0.004215758,0.29344344],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998099,0.000024418068,0.0000093619865,0.000050825805,0.00007582432,0.000029601764],"domain_scores_gemma":[0.9995653,0.00010810412,0.00005166572,0.000067749126,0.0001747172,0.000032434174],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004161361,0.00041174193,0.00025381666,0.0006080206,0.0007353847,0.001479735,0.0005839273,0.0007262643,0.04997756],"category_scores_gemma":[0.0006786424,0.00039003082,0.0004018804,0.0007934848,0.00038720493,0.0006726775,0.00034350445,0.0010490478,0.015555712],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0017868072,0.00016460006,0.006010729,0.0006522099,0.000069848495,0.00058134936,0.0010095226,0.0043559726,0.80005455,0.032421686,0.07758934,0.075303465],"study_design_scores_gemma":[0.000086122105,0.00040734606,0.00904889,0.00007871703,0.000077046665,0.000336916,0.000648833,0.0048978794,0.77787054,0.0019050968,0.20452838,0.000114237635],"about_ca_topic_score_codex":0.008994137,"about_ca_topic_score_gemma":0.014410096,"teacher_disagreement_score":0.04997756,"about_ca_system_score_codex":0.0013914858,"about_ca_system_score_gemma":0.000917216,"threshold_uncertainty_score":0.16719157},"labels":[],"label_agreement":null},{"id":"W2316686098","doi":"10.1103/physrevb.66.134528","title":"Structural ordering and symmetry breaking in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cd</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Re</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":54,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Canadian Institute for Advanced Research; McMaster University","funders":"","keywords":"Tetragonal crystal system; Crystallography; Physics; Superlattice; Condensed matter physics; Pyrochlore; Phase (matter); Phase transition; Scattering; Materials science; Crystal structure; Optics; Chemistry; Quantum mechanics","score_opus":0.016730772235503417,"score_gpt":0.25033356922232347,"score_spread":0.23360279698682004,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2316686098","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.01884224,0.0007908316,0.38667017,0.0039843917,0.0032145234,0.00057176215,0.018530698,0.042601503,0.5247939],"genre_scores_gemma":[0.20875905,0.0015867832,0.2766787,0.0023153145,0.0006340516,0.0008161896,0.061821066,0.04627171,0.40111712],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9976023,0.0005017342,0.00021344313,0.00045010608,0.00085682556,0.00037556427],"domain_scores_gemma":[0.9969085,0.0006654836,0.00018503549,0.001132933,0.0008807629,0.00022734524],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001564648,0.0016995466,0.001104312,0.0022070569,0.0031729783,0.0076741385,0.002447884,0.0016494634,0.17519304],"category_scores_gemma":[0.0076095886,0.0014149763,0.0018851848,0.0029270744,0.0023280447,0.009009945,0.0030658278,0.0034657547,0.081989065],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00037861412,0.00019951229,0.0008048432,0.00046413398,0.000030019042,0.000646283,0.0014554908,0.0022994997,0.0078060986,0.63019884,0.2631719,0.09254475],"study_design_scores_gemma":[0.000090087866,0.000085132095,0.00064228696,0.00015022502,0.00003222756,0.00038689212,0.00080586143,0.009091029,0.015816873,0.24926606,0.7235342,0.0000990755],"about_ca_topic_score_codex":0.0116434535,"about_ca_topic_score_gemma":0.012813154,"teacher_disagreement_score":0.17519304,"about_ca_system_score_codex":0.0027617365,"about_ca_system_score_gemma":0.0034830503,"threshold_uncertainty_score":0.5860791},"labels":[],"label_agreement":null},{"id":"W2326329920","doi":"10.1103/physrevb.66.214413","title":"Structural and magnetic properties of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Gd</mml:mi></mml:mrow><mml:mrow><mml:mn>5</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Si</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sn</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Magnetic and transport properties of perovskites and related materials","field":"Materials Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Monoclinic crystal system; Orthorhombic crystal system; Magnetic refrigeration; Crystallography; Condensed matter physics; Order (exchange); Ferromagnetism; Materials science; Ternary operation; Hyperfine structure; Physics; Magnetization; Crystal structure; Magnetic field; Chemistry; Atomic physics; Quantum mechanics; Computer science","score_opus":0.017694346964571603,"score_gpt":0.23299084447862944,"score_spread":0.21529649751405783,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2326329920","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.35047552,0.006863907,0.0779538,0.0055972845,0.0018836156,0.0004373452,0.09279642,0.011838664,0.4521534],"genre_scores_gemma":[0.57937914,0.003109258,0.043120947,0.001940699,0.00019653194,0.0005367095,0.09477435,0.0065720407,0.27037036],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997888,0.000017971111,0.0000111844265,0.000051194103,0.0000940986,0.000036648515],"domain_scores_gemma":[0.9995945,0.00008989166,0.000058600377,0.000056970915,0.0001556868,0.000044283184],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003690054,0.0005593989,0.00040231395,0.0006896513,0.00065608136,0.0009909341,0.0009057071,0.0010674355,0.11310337],"category_scores_gemma":[0.000978434,0.00041630474,0.00034517635,0.00093681604,0.0002934159,0.0010939258,0.00033718854,0.0010265929,0.027818454],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009871552,0.00021034654,0.002238635,0.0012262041,0.00009535022,0.00057779934,0.00039844148,0.00583073,0.7018614,0.013570588,0.22907418,0.04392921],"study_design_scores_gemma":[0.00010142248,0.00036289336,0.007287004,0.00008289483,0.00010160353,0.00041645905,0.0003140549,0.012539144,0.64077806,0.0018624072,0.3360318,0.00012223473],"about_ca_topic_score_codex":0.005937896,"about_ca_topic_score_gemma":0.0066771903,"teacher_disagreement_score":0.11310337,"about_ca_system_score_codex":0.0010371685,"about_ca_system_score_gemma":0.00053200254,"threshold_uncertainty_score":0.37836844},"labels":[],"label_agreement":null},{"id":"W2326987491","doi":"10.1103/physrevb.68.014413","title":"<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msup><mml:mrow/><mml:mrow><mml:mn>166</mml:mn></mml:mrow></mml:msup></mml:mrow><mml:mi mathvariant=\"normal\">Er</mml:mi></mml:math>Mössbauer study of magnetic ordering in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Er</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ge</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rare-earth and actinide compounds","field":"Physics and Astronomy","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Australian Research Council; Natural Sciences and Engineering Research Council of Canada","keywords":"Hyperfine structure; Orientation (vector space); Physics; Spectroscopy; Magnetic moment; Crystallography; Nuclear magnetic resonance; Atomic physics; Condensed matter physics; Chemistry; Geometry; Mathematics; Quantum mechanics","score_opus":0.01621050688411546,"score_gpt":0.24965075460044456,"score_spread":0.2334402477163291,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2326987491","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0021286462,0.0005588623,0.14540064,0.0061652553,0.0021314232,0.0012278351,0.1755049,0.14501688,0.52186555],"genre_scores_gemma":[0.010652819,0.0021834446,0.10336151,0.0039670267,0.0004367174,0.0012782139,0.29383418,0.08241357,0.5018725],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9983253,0.00027343168,0.00022579562,0.00025501926,0.0007469288,0.00017353974],"domain_scores_gemma":[0.9966804,0.00062059955,0.00021343183,0.0011211091,0.0011018424,0.00026262456],"candidate_categories":["insufficient_payload"],"consensus_categories":[],"category_scores_codex":[0.0026113905,0.0030816086,0.0016657376,0.003003699,0.001876558,0.009040941,0.0047486736,0.003916194,0.49491796],"category_scores_gemma":[0.006441406,0.002169888,0.0022399046,0.0047313636,0.001040324,0.0071464083,0.0028878052,0.0038695382,0.5752877],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015510485,0.00009735593,0.00020644894,0.0003529832,0.00003000723,0.00016426126,0.00016806298,0.0007028587,0.004458468,0.011930262,0.9352046,0.046529576],"study_design_scores_gemma":[0.000035199766,0.000017754428,0.00035244998,0.00007418606,0.00001150498,0.00010043252,0.000074624295,0.0010649946,0.003447637,0.004630081,0.99015135,0.000039818264],"about_ca_topic_score_codex":0.0232135,"about_ca_topic_score_gemma":0.022575198,"teacher_disagreement_score":0.49491796,"about_ca_system_score_codex":0.0037274663,"about_ca_system_score_gemma":0.0027516338,"threshold_uncertainty_score":0.72043824},"labels":[],"label_agreement":null},{"id":"W2328815211","doi":"10.1103/physrevb.67.205318","title":"Influence of excitonic effects on dynamic localization in semiconductor superlattices in combined dc and ac electric fields","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor Quantum Structures and Devices","field":"Physics and Astronomy","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Electric field; Physics; Terahertz radiation; Superlattice; Semiconductor; Excited state; Exciton; Condensed matter physics; Bloch oscillations; Optoelectronics; Atomic physics; Quantum mechanics","score_opus":0.00544530003959531,"score_gpt":0.27719925330149126,"score_spread":0.27175395326189594,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2328815211","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99253064,0.00029756283,0.004604748,0.00006874231,0.0000071579434,0.0000071427507,0.000010747704,0.000038634713,0.0024345957],"genre_scores_gemma":[0.99890137,0.00013754594,0.0006126141,0.000008373552,0.000002649763,0.000004954239,0.0000066840116,0.000005506813,0.0003203179],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999176,0.00001236828,0.0000034930745,0.000011822037,0.000032605352,0.000022006869],"domain_scores_gemma":[0.9997234,0.00014713699,0.00003868011,0.000017056285,0.000032637778,0.00004106042],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017786585,0.0002456949,0.0002972409,0.00025809326,0.0003762993,0.00047845682,0.0002812556,0.00016750334,0.0015882629],"category_scores_gemma":[0.00045158112,0.0001450133,0.00013618416,0.00028183463,0.0006638773,0.00048100896,0.0005210534,0.00028026174,0.00014516023],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00051591935,0.00009000886,0.0024294597,0.00020921939,0.000041427396,0.0008737781,0.00029767994,0.055016194,0.92102355,0.01131775,0.000114592054,0.008070483],"study_design_scores_gemma":[0.0001226164,0.0005408619,0.004288726,0.000027434877,0.00007960507,0.00039264347,0.00040397074,0.35883877,0.62862945,0.005270697,0.0013511777,0.000054081265],"about_ca_topic_score_codex":0.0011096833,"about_ca_topic_score_gemma":0.0012749606,"teacher_disagreement_score":0.0015882629,"about_ca_system_score_codex":0.00033336552,"about_ca_system_score_gemma":0.00022136974,"threshold_uncertainty_score":0.0053132176},"labels":[],"label_agreement":null},{"id":"W2519818241","doi":"10.1103/physrevb.62.14511","title":"Combined paramagnetic and diamagnetic response of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">YBa</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Paramagnetism; Diamagnetism; Condensed matter physics; Anisotropy; Physics; Magnetic field; Field (mathematics); Superconductivity; Quasiparticle; Nuclear magnetic resonance; Quantum mechanics; Mathematics","score_opus":0.015181446690411445,"score_gpt":0.24396337052056546,"score_spread":0.22878192383015403,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2519818241","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5077447,0.0070686173,0.11483106,0.008382442,0.0040005064,0.0005028125,0.021669433,0.013841891,0.32195848],"genre_scores_gemma":[0.65520084,0.0027802936,0.046333354,0.004632274,0.00043137025,0.0004388667,0.015454305,0.0042690793,0.27045962],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995976,0.000040752933,0.000012989644,0.00011929207,0.0001083357,0.00012106624],"domain_scores_gemma":[0.99947256,0.00009306836,0.000048914193,0.000057686913,0.00022003822,0.000107624415],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004513803,0.0008681907,0.00064101396,0.0010534674,0.0009644299,0.0010610936,0.0010290076,0.0013686364,0.10760721],"category_scores_gemma":[0.00091180106,0.0005413897,0.0005103389,0.0008521196,0.00038502362,0.0010515462,0.00063939305,0.0017220844,0.02148977],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010685785,0.00017742625,0.0009627075,0.0006275232,0.00009328802,0.000598086,0.00016152534,0.0005029328,0.91224766,0.0017599323,0.052008,0.02979235],"study_design_scores_gemma":[0.00011170132,0.00041390373,0.00788392,0.00007144209,0.00010776729,0.00068072585,0.00025811678,0.0035141276,0.9219603,0.0009093131,0.06400305,0.00008565467],"about_ca_topic_score_codex":0.0040375753,"about_ca_topic_score_gemma":0.006465113,"teacher_disagreement_score":0.10760721,"about_ca_system_score_codex":0.00090378686,"about_ca_system_score_gemma":0.00041123806,"threshold_uncertainty_score":0.359982},"labels":[],"label_agreement":null},{"id":"W2553775560","doi":"10.1103/physrevb.68.180401","title":"Dynamic frustrated magnetism in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Tb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ti</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>at 50 mK","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":130,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; Canadian Institute for Advanced Research","funders":"","keywords":"Paramagnetism; Physics; Spins; Magnetism; Crystallography; Neutron diffraction; Condensed matter physics; Magnetic susceptibility; Nuclear magnetic resonance; Diffraction; Chemistry; Quantum mechanics","score_opus":0.014008642223587654,"score_gpt":0.24975108724234216,"score_spread":0.2357424450187545,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2553775560","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.062192492,0.0017272503,0.07096021,0.010001789,0.0029108198,0.00007583748,0.009559035,0.015302541,0.82727003],"genre_scores_gemma":[0.5913586,0.0016097565,0.038238686,0.003228702,0.00046888395,0.00021342085,0.016271466,0.012531408,0.33607915],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99979526,0.00003218579,0.000006576953,0.000033880013,0.00008162829,0.000050455274],"domain_scores_gemma":[0.9998417,0.000030561918,0.00001244911,0.000038876897,0.00004124936,0.000035152138],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022339741,0.00044807311,0.00049316057,0.000622817,0.001242712,0.002326321,0.0008969714,0.00078473665,0.15314144],"category_scores_gemma":[0.0006750504,0.00035160163,0.0004153352,0.0006798296,0.00047466147,0.0017162969,0.0012218044,0.0012912927,0.027507009],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00046381104,0.000093075374,0.00080376794,0.00053806725,0.00005547178,0.0007143838,0.00061486725,0.0031868806,0.04292453,0.27371186,0.6316599,0.04523331],"study_design_scores_gemma":[0.00020822606,0.000128468,0.0031189276,0.00015528924,0.000053466167,0.0009500062,0.000706017,0.04349261,0.057488333,0.12981513,0.7637306,0.00015304214],"about_ca_topic_score_codex":0.0035624246,"about_ca_topic_score_gemma":0.00646254,"teacher_disagreement_score":0.15314144,"about_ca_system_score_codex":0.0014054151,"about_ca_system_score_gemma":0.00052296283,"threshold_uncertainty_score":0.5123092},"labels":[],"label_agreement":null},{"id":"W2566425658","doi":"10.1103/physrevb.65.224407","title":"Metal-insulator transition in the<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">SrRu</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Mg</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>system","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brock University","funders":"","keywords":"Materials science; Metal; Condensed matter physics; Ferromagnetism; Physics; Crystallography; Chemistry","score_opus":0.01697594316526205,"score_gpt":0.2459440732667365,"score_spread":0.22896813010147446,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2566425658","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.11006486,0.0017099079,0.033924475,0.0061823344,0.0049044006,0.00009929479,0.00918297,0.012742945,0.8211889],"genre_scores_gemma":[0.65210575,0.0013358326,0.0240242,0.0018936859,0.0004756757,0.00018785235,0.011924367,0.0057288893,0.30232376],"study_design_codex":"not_applicable","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998362,0.000016447691,0.000006027661,0.000037762773,0.000057818736,0.000045640438],"domain_scores_gemma":[0.9999207,0.00001924507,0.000005797334,0.000021428803,0.000018391307,0.000014441176],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001231596,0.0002935701,0.00039315765,0.00046949938,0.0009448337,0.0018494539,0.0005710655,0.000723859,0.09088513],"category_scores_gemma":[0.00043196924,0.00020567808,0.00042870408,0.0004965331,0.00036021607,0.0012966779,0.0008172476,0.0011524782,0.021049593],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00043330019,0.00015663607,0.0008568804,0.00056139496,0.000038978647,0.0008999692,0.0005404617,0.0012752092,0.08811721,0.36206505,0.5021802,0.042874776],"study_design_scores_gemma":[0.00012773534,0.00025643717,0.0037968091,0.00014506688,0.00004629335,0.0009192591,0.0006029974,0.018674655,0.12623575,0.07457981,0.7745119,0.00010323844],"about_ca_topic_score_codex":0.0018326769,"about_ca_topic_score_gemma":0.003106088,"teacher_disagreement_score":0.09088513,"about_ca_system_score_codex":0.0009771921,"about_ca_system_score_gemma":0.00040370913,"threshold_uncertainty_score":0.30404103},"labels":[],"label_agreement":null},{"id":"W272650875","doi":"10.1103/physrevb.62.11203","title":"Role of fast sputtered particles during sputter deposition: Growth of epitaxial<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Ge</mml:mi></mml:mrow><mml:mrow><mml:mn>0.99</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mn>0.01</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>/</mml:mo><mml:mi mathvariant=\"normal\">G</mml:mi><mml:mi mathvariant=\"normal\">e</mml:mi><mml:mo>(</mml:mo><mml:mn>001</mml:mn><mml:mo>)</mml:mo><mml:mn/></mml:math>","year":2000,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor materials and devices","field":"Engineering","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Natural Sciences and Engineering Research Council of Canada; U.S. Department of Energy","keywords":"Sputtering; Epitaxy; Materials science; Sputter deposition; Crystallography; Lattice (music); Ab initio; Physics; Thin film; Nanotechnology; Chemistry","score_opus":0.012744867636847899,"score_gpt":0.23046158646680912,"score_spread":0.21771671882996121,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W272650875","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9025159,0.0076435707,0.028746845,0.0014315331,0.0015292508,0.00038955765,0.00457156,0.0025948961,0.050576925],"genre_scores_gemma":[0.9203518,0.0037914321,0.03280128,0.0003193064,0.00006096272,0.00017597133,0.0024450768,0.0021478923,0.03790621],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996118,0.000030137346,0.000037217458,0.000115747935,0.00013498767,0.00007011648],"domain_scores_gemma":[0.9994894,0.00020074923,0.00004810814,0.000078399346,0.0001421615,0.00004108802],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00041943954,0.0006050766,0.00052366586,0.00029154902,0.0006416068,0.0012736522,0.00090795575,0.00071410835,0.007317799],"category_scores_gemma":[0.0010300305,0.0007250285,0.0002874117,0.00035347012,0.000263943,0.00077377085,0.0005230189,0.0010510085,0.0026841534],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018603019,0.000034491633,0.0005880341,0.00028714878,0.00002655473,0.00026944742,0.00023746744,0.00024290412,0.98885685,0.0007468867,0.0027317689,0.0057925107],"study_design_scores_gemma":[0.000018914925,0.00005719946,0.0018215906,0.000018468023,0.000014484512,0.00008132513,0.000055672266,0.0012915483,0.9890056,0.000055613044,0.0075665084,0.000013091969],"about_ca_topic_score_codex":0.0057719736,"about_ca_topic_score_gemma":0.016269369,"teacher_disagreement_score":0.007317799,"about_ca_system_score_codex":0.0009520294,"about_ca_system_score_gemma":0.00076499884,"threshold_uncertainty_score":0.024480522},"labels":[],"label_agreement":null},{"id":"W2777361886","doi":"10.1103/physrevb.66.024520","title":"Effect of Co doping on the electronic structure of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">MgCNi</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Thermal Expansion and Ionic Conductivity","field":"Materials Science","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"","keywords":"Superconductivity; Physics; Fermi level; Doping; Electronic structure; Condensed matter physics; Tin; Crystallography; Electronic band structure; Materials science; Electron; Quantum mechanics; Chemistry","score_opus":0.01584720514269633,"score_gpt":0.2605335195460162,"score_spread":0.2446863144033199,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2777361886","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9901585,0.0005989533,0.00037494535,0.0001672275,0.00005507236,0.000011715455,0.00028222377,0.00010971431,0.008241559],"genre_scores_gemma":[0.9982887,0.0002397402,0.00041676115,0.000023404049,0.000004801867,0.000009047863,0.00013806077,0.000042465672,0.0008370405],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99988043,0.000014636798,0.000006996921,0.000025695119,0.000035594818,0.000036576872],"domain_scores_gemma":[0.99975914,0.00010113952,0.000041192965,0.000021936043,0.000041680963,0.000034830828],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013827505,0.0003782643,0.00042486965,0.00038777583,0.00040856976,0.0007428108,0.0006820513,0.00041810703,0.0032757293],"category_scores_gemma":[0.0006097267,0.0001978072,0.00012571072,0.00047712607,0.00044323772,0.0002505663,0.0003071753,0.00031628882,0.0004072956],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.009189022,0.0006056209,0.010216249,0.0011651288,0.000269335,0.0010437347,0.00055693934,0.024240531,0.9039326,0.012476177,0.006972546,0.02933224],"study_design_scores_gemma":[0.000111723464,0.00099192,0.009779579,0.000098618744,0.00016129704,0.00026126145,0.00032830823,0.06658795,0.91348124,0.00062490796,0.007524531,0.00004856887],"about_ca_topic_score_codex":0.007096791,"about_ca_topic_score_gemma":0.01222399,"teacher_disagreement_score":0.007096791,"about_ca_system_score_codex":0.00082493713,"about_ca_system_score_gemma":0.00047690055,"threshold_uncertainty_score":0.014110982},"labels":[],"label_agreement":null},{"id":"W2794145602","doi":"10.1103/physrevb.68.115308","title":"Lattice vibrations of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Si</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">C</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>epilayers on Si(100)","year":2003,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Semiconductor materials and devices","field":"Engineering","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institute for Microstructural Sciences","funders":"Chalmers Tekniska Högskola","keywords":"Raman spectroscopy; Phonon; Physics; Spectroscopy; Lattice (music); Materials science; Nuclear magnetic resonance; Condensed matter physics; Atomic physics; Optics","score_opus":0.01887197800618514,"score_gpt":0.2519838652881666,"score_spread":0.23311188728198143,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2794145602","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9802694,0.00054254354,0.0035821605,0.00032041222,0.000098328965,0.000014811076,0.003051579,0.00026451118,0.011856283],"genre_scores_gemma":[0.9795488,0.0004358042,0.0038637887,0.00008855208,0.000008065661,0.000028699562,0.0028284893,0.00015307739,0.013044809],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998147,0.00001371447,0.000007834498,0.000035570018,0.000085321684,0.000042880347],"domain_scores_gemma":[0.9998549,0.000048961938,0.000025965923,0.000013538197,0.00003740676,0.000019186738],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001614805,0.0003052488,0.00017564841,0.00029829697,0.0003150384,0.0003739799,0.0005511924,0.00043048465,0.015554472],"category_scores_gemma":[0.00032350342,0.00026531552,0.0001452138,0.0005297561,0.00027445075,0.00032338744,0.00017964904,0.0008000207,0.0015505331],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028358796,0.00005131807,0.0012088662,0.00015877152,0.00002568963,0.0000935842,0.00016834847,0.0022646647,0.98365617,0.0015634033,0.0036406138,0.006885088],"study_design_scores_gemma":[0.000022691831,0.0001852973,0.0124360025,0.000013195495,0.000014759648,0.000065184315,0.0003338029,0.009203669,0.9723837,0.0002697973,0.0050319596,0.00003996298],"about_ca_topic_score_codex":0.0047825566,"about_ca_topic_score_gemma":0.010569437,"teacher_disagreement_score":0.015554472,"about_ca_system_score_codex":0.00052214216,"about_ca_system_score_gemma":0.00026289246,"threshold_uncertainty_score":0.052034855},"labels":[],"label_agreement":null},{"id":"W2903119488","doi":"10.1103/physrevb.66.224508","title":"Infrared transmission study of crystal-field excitations in<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi><mml:mi>−</mml:mi><mml:mi>y</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nd</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mi>y</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">CuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Sherbrooke","funders":"","keywords":"Physics; Crystal (programming language); Multiplet; Field (mathematics); Excited state; Condensed matter physics; Anisotropy; Crystallography; Atomic physics; Nuclear magnetic resonance; Spectral line; Optics; Quantum mechanics; Chemistry","score_opus":0.019001004903863666,"score_gpt":0.25108203726717004,"score_spread":0.23208103236330638,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2903119488","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6798478,0.002551468,0.019870339,0.0032499235,0.0009975873,0.00007506305,0.0072606243,0.0024781595,0.28366905],"genre_scores_gemma":[0.8991263,0.0020084882,0.009737377,0.0007033399,0.00010456059,0.000116963114,0.0064293663,0.0015456408,0.080228016],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995776,0.00004226947,0.000009625193,0.00010732565,0.00014368238,0.0001194886],"domain_scores_gemma":[0.99939907,0.00015580027,0.00007993872,0.000080295984,0.0002365991,0.000048243226],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00044022402,0.00068214786,0.0004658918,0.00081001676,0.0017657696,0.00096824847,0.0012741691,0.00081204384,0.09019616],"category_scores_gemma":[0.0007716623,0.00033727163,0.00034125225,0.0012750262,0.00075171667,0.0013923316,0.0005608254,0.0029696203,0.0065700607],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0015455177,0.00040151153,0.002328058,0.0007719634,0.00008989226,0.0009932877,0.0011379188,0.0019446769,0.8183161,0.018102234,0.12567124,0.028697664],"study_design_scores_gemma":[0.00012950246,0.0005195948,0.027261874,0.000244582,0.00008122247,0.0006351324,0.0013958823,0.017154375,0.887695,0.0018496305,0.06291306,0.00012002129],"about_ca_topic_score_codex":0.0056505506,"about_ca_topic_score_gemma":0.00747007,"teacher_disagreement_score":0.09019616,"about_ca_system_score_codex":0.0011623872,"about_ca_system_score_gemma":0.00072841335,"threshold_uncertainty_score":0.30173624},"labels":[{"model":"gemma","categories":[],"domain":null,"study_design":"bench_or_experimental","genre":"empirical","about_ca_system":false,"about_ca_topic":false,"confidence":"low"},{"model":"gpt","categories":["insufficient_payload"],"domain":null,"study_design":"not_applicable","genre":"other","about_ca_system":false,"about_ca_topic":false,"confidence":"low"}],"label_agreement":"split"},{"id":"W2962934824","doi":"10.1103/physrevb.68.035305","title":"Influence of subband mixing due to spin-orbit interaction on the transmission through periodically modulated waveguides","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Concordia University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Stub (electronics); Ballistic conduction; Condensed matter physics; Physics; Electron; Silicon on insulator; Spin (aerodynamics); Conductance; Asymmetry; Waveguide; Optics; Quantum mechanics; Silicon; Optoelectronics","score_opus":0.012885790821415603,"score_gpt":0.2908041091536647,"score_spread":0.2779183183322491,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2962934824","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9967632,0.00014394661,0.001839246,0.000032202286,0.00000995708,0.000004170655,0.000014050867,0.000023399953,0.0011697734],"genre_scores_gemma":[0.9990802,0.00015338018,0.00048405465,0.0000046556515,0.000003998077,0.0000035902806,0.000010370331,0.000008122567,0.0002516571],"study_design_codex":"bench_or_experimental","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998965,0.000025025696,0.0000045092393,0.000017747705,0.000030749037,0.00002542142],"domain_scores_gemma":[0.99947184,0.00028535607,0.00013594251,0.000035543988,0.00003216008,0.000039143753],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023043924,0.00031602962,0.00026042643,0.00017458928,0.00022615517,0.00057298876,0.00023457556,0.00023973486,0.00086718204],"category_scores_gemma":[0.00062313053,0.00021789795,0.00016292723,0.00016345565,0.0004907149,0.00031226434,0.00022950298,0.00028104815,0.00013426514],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020803348,0.000023836796,0.00035190175,0.000054250202,0.000012984312,0.00018975638,0.00008104453,0.0018693988,0.9934673,0.002418432,0.00003273458,0.0012903452],"study_design_scores_gemma":[0.000049061888,0.00042619227,0.0018745307,0.000014903956,0.000045980763,0.00022041466,0.00007119277,0.0402232,0.95551634,0.0008398501,0.00070328364,0.000014969325],"about_ca_topic_score_codex":0.0002574658,"about_ca_topic_score_gemma":0.00033196437,"teacher_disagreement_score":0.00086718204,"about_ca_system_score_codex":0.00025995608,"about_ca_system_score_gemma":0.00013006841,"threshold_uncertainty_score":0.0029010177},"labels":[],"label_agreement":null},{"id":"W2964061489","doi":"10.1103/physrevb.61.1490","title":"Consistent picture of electronic Raman scattering and infrared conductivity in the cuprates","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"University of Waterloo","keywords":"Raman scattering; Condensed matter physics; X-ray Raman scattering; Inelastic scattering; Cuprate; Scattering; Infrared; Anisotropy; Conductivity; Raman spectroscopy; Physics; Doping; Inelastic neutron scattering; Impurity; Materials science; Optics; Quantum mechanics","score_opus":0.009024105189301471,"score_gpt":0.2701665764262879,"score_spread":0.2611424712369864,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2964061489","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.39611152,0.007318775,0.43560082,0.0059429877,0.0009818451,0.0006075074,0.0011385258,0.001461779,0.15083621],"genre_scores_gemma":[0.8713684,0.0030570158,0.10688761,0.0013706553,0.00029719944,0.0011353546,0.00055005454,0.00032929875,0.0150043275],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995382,0.000098818324,0.000024633415,0.000025137095,0.00026505775,0.000048202015],"domain_scores_gemma":[0.99969566,0.000089364454,0.000029891979,0.00007375146,0.000077375305,0.000033946944],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0011002723,0.0018756586,0.0020252224,0.001620066,0.002483505,0.0022126872,0.0046999,0.0023643407,0.0050631035],"category_scores_gemma":[0.0012155627,0.00061779947,0.0012525449,0.0008752241,0.0019972574,0.0025869678,0.0009007213,0.0017265232,0.0012479603],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000390672,0.0000686665,0.00046652133,0.00020090012,0.000024208499,0.00027049205,0.00009476962,0.059344,0.003929675,0.9299656,0.0012671942,0.004328979],"study_design_scores_gemma":[0.00007216979,0.000050260922,0.0005475775,0.00009854248,0.000030253732,0.00023746552,0.00015118127,0.3723057,0.0015873978,0.6226008,0.002270488,0.00004818942],"about_ca_topic_score_codex":0.0014759641,"about_ca_topic_score_gemma":0.002855506,"teacher_disagreement_score":0.0050631035,"about_ca_system_score_codex":0.0008416353,"about_ca_system_score_gemma":0.0011554005,"threshold_uncertainty_score":0.016937792},"labels":[],"label_agreement":null},{"id":"W2974950710","doi":"10.1103/physrevb.66.214508","title":"Theory of elastic properties of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">RuO</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>at the superconducting transition temperature","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Advanced Condensed Matter Physics","field":"Physics and Astronomy","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada; Canadian Institute for Advanced Research","keywords":"Classification of discontinuities; Function (biology); Physics; Thermal expansion; Thermodynamics; Materials science; Condensed matter physics; Mathematical analysis; Mathematics","score_opus":0.018432052297754794,"score_gpt":0.2399157900548063,"score_spread":0.2214837377570515,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2974950710","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.036739096,0.0035814214,0.71251476,0.002108022,0.0007992717,0.000116854004,0.00091615855,0.00049148273,0.24273302],"genre_scores_gemma":[0.61161745,0.007456157,0.07351135,0.0014949514,0.00084039144,0.0007067255,0.0011545938,0.0010562012,0.30216217],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9996375,0.0000634178,0.00001638933,0.00008139435,0.00014077585,0.000060471168],"domain_scores_gemma":[0.99956447,0.00016243292,0.00006216227,0.00007797186,0.000101184945,0.000031722117],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006813649,0.0012685293,0.0007293737,0.0024929482,0.0010286102,0.002055571,0.0017400972,0.0019749403,0.02504756],"category_scores_gemma":[0.0018040618,0.00073577964,0.0008003794,0.00097210205,0.001846097,0.0033225447,0.00097559305,0.001836748,0.0065950584],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000013590788,0.000023577,0.00013108025,0.00010834276,0.000014524523,0.000075573575,0.00007127614,0.029515844,0.0036895815,0.952673,0.0027551653,0.010928403],"study_design_scores_gemma":[0.0000102089,0.000027569184,0.0008173969,0.000069188594,0.000011982185,0.00021182453,0.00007175153,0.27641824,0.003003354,0.7027616,0.016539784,0.000057153284],"about_ca_topic_score_codex":0.0012393969,"about_ca_topic_score_gemma":0.0010837147,"teacher_disagreement_score":0.02504756,"about_ca_system_score_codex":0.0010201329,"about_ca_system_score_gemma":0.00050645246,"threshold_uncertainty_score":0.08379245},"labels":[],"label_agreement":null},{"id":"W2996866538","doi":"10.1103/physrevb.63.104109","title":"Irradiation-induced amorphization of<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Cd</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>7</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>pyrochlore","year":2001,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Nuclear materials and radiation effects","field":"Materials Science","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"Argonne National Laboratory","keywords":"Pyrochlore; Materials science; Crystallography; Ion; Irradiation; Analytical Chemistry (journal); Atomic physics; Physics; Chemistry; Nuclear physics; Phase (matter)","score_opus":0.016695462425807706,"score_gpt":0.2514109964117238,"score_spread":0.2347155339859161,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2996866538","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7910909,0.0035122589,0.010945419,0.0009143482,0.00064070255,0.00014509799,0.030394802,0.0037757065,0.15858077],"genre_scores_gemma":[0.88127106,0.001333775,0.0057546506,0.00029142978,0.000020072175,0.000093354385,0.01920152,0.001979889,0.09005412],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99984145,0.0000059296253,0.000007037912,0.000038942344,0.000071085684,0.00003552263],"domain_scores_gemma":[0.9998281,0.00003307677,0.000021134294,0.000034416313,0.0000589008,0.000024357343],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009283194,0.00031927205,0.00027801664,0.0003376181,0.0005455142,0.00073204486,0.0005175772,0.00051121385,0.02272913],"category_scores_gemma":[0.0003381277,0.0003186557,0.00021428947,0.0005340251,0.00019641193,0.0005308176,0.00028952005,0.0008197656,0.0058785127],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00037623604,0.00006237254,0.0010240474,0.0002726676,0.00002705156,0.00037644652,0.00024140473,0.00093023054,0.955725,0.00218917,0.030899255,0.007876111],"study_design_scores_gemma":[0.000016398793,0.00007354407,0.0051171584,0.000022679573,0.00001922004,0.00014307012,0.0001501411,0.0014360729,0.92788273,0.0002364156,0.06488056,0.000022044986],"about_ca_topic_score_codex":0.008478089,"about_ca_topic_score_gemma":0.018368822,"teacher_disagreement_score":0.02272913,"about_ca_system_score_codex":0.0010050643,"about_ca_system_score_gemma":0.0006724432,"threshold_uncertainty_score":0.07603651},"labels":[],"label_agreement":null},{"id":"W3022474132","doi":"10.1103/physrevb.67.014515","title":"SO(5) as a critical dynamical symmetry in the SU(4) model of high-temperature superconductivity","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Superconductivity; Symmetry (geometry); Physics; Condensed matter physics; Mathematical physics; Theoretical physics; Mathematics","score_opus":0.015492808579227815,"score_gpt":0.2985632920390689,"score_spread":0.2830704834598411,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3022474132","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9129922,0.0006924988,0.03438645,0.0017466719,0.00013678746,0.00004225819,0.00009090614,0.00015112197,0.049761135],"genre_scores_gemma":[0.99390393,0.00016670013,0.003288781,0.000086788925,0.000048371418,0.000023398698,0.00003624047,0.000013661023,0.002432233],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9998456,0.00004835614,0.000007120895,0.000014548212,0.000049142847,0.00003523605],"domain_scores_gemma":[0.99985373,0.000023199063,0.00003239202,0.000028776207,0.000023871859,0.00003804111],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040875617,0.00030048197,0.0003346619,0.0006289638,0.000873873,0.0013988888,0.00065160287,0.000693497,0.0018824682],"category_scores_gemma":[0.00045069715,0.00014101884,0.0006394388,0.00031803106,0.0019043774,0.0014146765,0.0007453387,0.00053302076,0.00016994352],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000012668093,0.000011256624,0.0001857468,0.000009976908,0.0000027549265,0.000076903205,0.00008983079,0.005135711,0.0013625193,0.99205375,0.00028895208,0.00077006104],"study_design_scores_gemma":[0.000036222275,0.00003970279,0.0005013273,0.000011919983,0.000006372062,0.00008125821,0.00011655484,0.066042,0.0005099641,0.93123835,0.0014022008,0.000014166878],"about_ca_topic_score_codex":0.0035078146,"about_ca_topic_score_gemma":0.0027716549,"teacher_disagreement_score":0.0035078146,"about_ca_system_score_codex":0.0009125733,"about_ca_system_score_gemma":0.00080833235,"threshold_uncertainty_score":0.0069748163},"labels":[],"label_agreement":null},{"id":"W3022530209","doi":"10.1103/physrevb.66.054522","title":"Anomalous temperature dependence of spin susceptibility around a nonmagnetic impurity in high-<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi>T</mml:mi></mml:mrow><mml:mrow><mml:mi>c</mml:mi></mml:mrow></mml:msub></mml:mrow></mml:math>cuprate superconductors","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Condensed matter physics; Impurity; Superconductivity; Spin (aerodynamics); Cuprate; Antiferromagnetism; Physics; Magnetic susceptibility; Knight shift; Magnetic impurity; Quantum mechanics; Thermodynamics","score_opus":0.017352722744849634,"score_gpt":0.2519104692932183,"score_spread":0.23455774654836867,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3022530209","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9979724,0.000105629566,0.0009489962,0.000020122894,0.0000038730877,0.000002544147,0.000020925936,0.000051541243,0.0008737837],"genre_scores_gemma":[0.99955565,0.00004733649,0.00021995182,0.0000020709492,0.000003610921,0.0000029615283,0.000026621365,0.00000962512,0.00013231291],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999341,0.000015740914,0.0000038300323,0.0000131136885,0.00001723336,0.000015972522],"domain_scores_gemma":[0.9996569,0.00011410648,0.00010925457,0.00003431074,0.000052259737,0.0000330433],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013576484,0.00022773584,0.00020177147,0.00035377927,0.0002395925,0.00031477478,0.00029475358,0.00020488123,0.0008302923],"category_scores_gemma":[0.00056265143,0.000147677,0.00017975099,0.00019339047,0.00066586316,0.0003026515,0.0002403425,0.00027631354,0.00012860267],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0008276021,0.00012699232,0.025135772,0.0003818498,0.00009523665,0.00088555727,0.00081696117,0.06538506,0.88403183,0.016943378,0.0006481242,0.0047217496],"study_design_scores_gemma":[0.000062882464,0.00061809964,0.041471336,0.000032740623,0.00009105605,0.0005868346,0.00018822105,0.39690074,0.554864,0.004434234,0.0006667323,0.00008309919],"about_ca_topic_score_codex":0.0008191629,"about_ca_topic_score_gemma":0.0009119905,"teacher_disagreement_score":0.0008302923,"about_ca_system_score_codex":0.0002160215,"about_ca_system_score_gemma":0.00013876773,"threshold_uncertainty_score":0.0027775764},"labels":[],"label_agreement":null},{"id":"W3084781914","doi":"10.1103/physrevb.65.144101","title":"Phase diagram of the relaxor ferroelectric<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mo>(</mml:mo><mml:mn>1</mml:mn><mml:mn/><mml:mi>−</mml:mi><mml:mi>x</mml:mi><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">P</mml:mi><mml:mi mathvariant=\"normal\">b</mml:mi><mml:mo>(</mml:mo><mml:mi mathvariant=\"normal\">Z</mml:mi><mml:mi mathvariant=\"normal\">n</mml:mi></mml:mrow><mml:mrow><mml:mn>1</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Nb</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mo>/</mml:mo><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>)</mml:mo><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow><mml:mo>−</mml:mo><mml:mi>x</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">PbTiO</mml:mi></mml:mrow><mml:mrow><mml:mn>3</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Ferroelectric and Piezoelectric Materials","field":"Materials Science","cited_by":313,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"Office of Naval Research; NIST Center for Neutron Research; Brookhaven National Laboratory; National Institute of Standards and Technology; U.S. Department of Commerce; U.S. Department of Energy","keywords":"Orthorhombic crystal system; Phase diagram; Ferroelectricity; Tetragonal crystal system; Monoclinic crystal system; Materials science; Condensed matter physics; Crystallography; Phase (matter); Solid solution; Crystal structure; Physics; Dielectric; Chemistry; Quantum mechanics","score_opus":0.018720537344386935,"score_gpt":0.25038492911028,"score_spread":0.23166439176589304,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3084781914","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7422763,0.0023599444,0.014610516,0.0045810277,0.0005057992,0.00014334967,0.0041131247,0.0016058773,0.22980402],"genre_scores_gemma":[0.94725746,0.00056021987,0.0071325186,0.00044742707,0.000045384066,0.000120009085,0.0024370085,0.0003508054,0.041649137],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999144,0.00001364951,0.0000020497955,0.00001707662,0.000027957927,0.000024836741],"domain_scores_gemma":[0.99984574,0.00004260165,0.000020999474,0.000012900317,0.0000516279,0.00002616175],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014242099,0.00021527964,0.00031397396,0.00053670513,0.0007643091,0.00079487206,0.00053154636,0.0006949711,0.043904595],"category_scores_gemma":[0.00040586543,0.0002468539,0.00014715073,0.00034909797,0.0004951939,0.00064109615,0.00020111592,0.000816314,0.0026564836],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0041177226,0.0004718659,0.0040138485,0.0014537943,0.00013882002,0.0011966641,0.00082970335,0.030865435,0.49635372,0.31419304,0.10563395,0.040731527],"study_design_scores_gemma":[0.0008350069,0.0021943366,0.023385273,0.0003909184,0.00012014402,0.00090571184,0.0013517324,0.42356473,0.34356993,0.07749663,0.12591538,0.0002701895],"about_ca_topic_score_codex":0.004070818,"about_ca_topic_score_gemma":0.006588845,"teacher_disagreement_score":0.043904595,"about_ca_system_score_codex":0.0006098746,"about_ca_system_score_gemma":0.0007442062,"threshold_uncertainty_score":0.1468755},"labels":[],"label_agreement":null},{"id":"W314290236","doi":"10.1103/physrevb.61.16454","title":"Microscopic model for<b><i>d</i></b>-wave charge-carrier pairing and non-Fermi-liquid behavior in a purely repulsive two-dimensional electron system","year":2000,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Quantum and electron transport phenomena","field":"Physics and Astronomy","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Pairing; Condensed matter physics; Physics; Fermi liquid theory; Electron; Fermi Gamma-ray Space Telescope; Charge density wave; Charge (physics); Quantum mechanics; Superconductivity","score_opus":0.011295710961406294,"score_gpt":0.2727590109041182,"score_spread":0.2614632999427119,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W314290236","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.94059205,0.000242706,0.034301493,0.0008019589,0.0000347333,0.00007235245,0.00015561219,0.00013967264,0.02365946],"genre_scores_gemma":[0.990892,0.00009581629,0.0047399458,0.000055870874,0.000013939121,0.00006531792,0.00005994721,0.000015950005,0.00406119],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99991214,0.000026571244,0.0000038950534,0.000013370573,0.000021561904,0.000022385797],"domain_scores_gemma":[0.9998902,0.000022607914,0.000017915521,0.000020710508,0.000014162615,0.000034430996],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015513023,0.00035876484,0.0005273354,0.00046612482,0.0008465459,0.0010353713,0.001333182,0.0010422221,0.0030077742],"category_scores_gemma":[0.00025604133,0.0002296468,0.00044517277,0.00026260686,0.0012632717,0.0011194171,0.00064443017,0.00043333418,0.0002329521],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020913036,0.00033497685,0.0037519424,0.00016258341,0.00007791306,0.0015367926,0.00037587486,0.40964276,0.0518288,0.52795804,0.0014885674,0.0026326687],"study_design_scores_gemma":[0.00010504101,0.00009805709,0.0009131963,0.000010385373,0.000015731668,0.00027650743,0.000094040945,0.9491295,0.0015787361,0.046597008,0.0011503155,0.000031338208],"about_ca_topic_score_codex":0.0038725939,"about_ca_topic_score_gemma":0.0028491484,"teacher_disagreement_score":0.0038725939,"about_ca_system_score_codex":0.0009426078,"about_ca_system_score_gemma":0.00075980055,"threshold_uncertainty_score":0.010061979},"labels":[],"label_agreement":null},{"id":"W7290220","doi":"10.1103/physrevb.65.134515","title":"Electronic phase separation in lightly doped<mml:math xmlns:mml=\"http://www.w3.org/1998/Math/MathML\" display=\"inline\"><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">La</mml:mi></mml:mrow><mml:mrow><mml:mn>2</mml:mn><mml:mi>−</mml:mi><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">Sr</mml:mi></mml:mrow><mml:mrow><mml:mi>x</mml:mi></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant=\"normal\">Cu</mml:mi><mml:mrow><mml:msub><mml:mrow><mml:mi mathvariant=\"normal\">O</mml:mi></mml:mrow><mml:mrow><mml:mn>4</mml:mn></mml:mrow></mml:msub></mml:mrow></mml:math>","year":2002,"lang":"lv","type":"article","venue":"Physical review. B, Condensed matter","topic":"Physics of Superconductivity and Magnetism","field":"Physics and Astronomy","cited_by":150,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Antiferromagnetism; Spin glass; Phase (matter); Doping; Physics; Condensed matter physics; Spin (aerodynamics); Crystallography; Materials science; Analytical Chemistry (journal); Chemistry; Thermodynamics; Quantum mechanics; Chromatography","score_opus":0.01722427758884062,"score_gpt":0.25760837466963216,"score_spread":0.24038409708079153,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W7290220","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.946318,0.00088796014,0.0051981583,0.00085058453,0.00031457678,0.000023701414,0.0009519043,0.00035191135,0.0451032],"genre_scores_gemma":[0.9661439,0.00039711763,0.0032717886,0.00018739779,0.000017724497,0.00002234916,0.00081952126,0.00016909665,0.02897116],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991214,0.0000069088996,0.0000031260167,0.00002468132,0.00002494267,0.000028274235],"domain_scores_gemma":[0.9999254,0.00002505811,0.000011661275,0.000008080126,0.000019736957,0.000010039484],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000107154025,0.00016988115,0.00015692369,0.00018254893,0.00036231574,0.00057148316,0.0003393589,0.00036996667,0.01249856],"category_scores_gemma":[0.00029176145,0.00014991629,0.000099373945,0.00026576364,0.00021620798,0.00040437316,0.00017081886,0.00062499125,0.0020589444],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010441067,0.00017355612,0.00037984137,0.00032036164,0.000017640921,0.00023042652,0.00026319976,0.0011512694,0.96191853,0.012084061,0.008901154,0.0135158375],"study_design_scores_gemma":[0.00004066455,0.00018029072,0.00066071935,0.000018065171,0.0000061879705,0.000041858308,0.0000774234,0.0050324234,0.9841711,0.00074547203,0.009010794,0.000014912305],"about_ca_topic_score_codex":0.0012362165,"about_ca_topic_score_gemma":0.00263489,"teacher_disagreement_score":0.01249856,"about_ca_system_score_codex":0.000580672,"about_ca_system_score_gemma":0.00026366935,"threshold_uncertainty_score":0.041811824},"labels":[],"label_agreement":null},{"id":"W9944085","doi":"10.1103/physrevb.37.7832","title":"Temporal Trends and Service Variation in the Relative Cost of Dying: Canada 1991-2001","year":2007,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Healthcare Policy and Management","field":"Economics, Econometrics and Finance","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Toronto","funders":"","keywords":"Medicine; Demography; Health care; Medical prescription; Population; Gerontology; Environmental health; Nursing; Economics","score_opus":0.05131670259212908,"score_gpt":0.3157177264652798,"score_spread":0.26440102387315073,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W9944085","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.92592907,0.0029084412,0.00023169458,0.0016945296,0.000032791966,0.000058884816,0.0647541,0.000048258702,0.0043422566],"genre_scores_gemma":[0.9755098,0.0012313165,0.00029597315,0.00020616237,0.00001531431,0.000029324321,0.020723656,0.00001645573,0.001971945],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99837154,0.00011360687,0.00017665823,0.0002605477,0.00062287215,0.00045477043],"domain_scores_gemma":[0.9935129,0.0003472406,0.0014808626,0.00015684293,0.0038285179,0.0006735994],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00096040586,0.00032482643,0.00055645104,0.002617996,0.001521665,0.0014065298,0.001577486,0.0005746172,0.0020396602],"category_scores_gemma":[0.0058649746,0.00032849156,0.00057993946,0.0099045,0.0004994617,0.00057543354,0.0008346595,0.0010299948,0.00032752185],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00011944628,0.000023091678,0.9882239,0.00008635674,0.00009525322,0.00007490857,0.00042300601,0.00050138135,0.000086687374,0.00022804127,0.003371413,0.0067665344],"study_design_scores_gemma":[0.0000038179173,0.00000722737,0.99814,0.000015759855,0.0000122550255,0.00003794644,0.00025531286,0.00032138405,0.00003085165,0.000012021672,0.0011578972,0.0000055442397],"about_ca_topic_score_codex":0.9940905,"about_ca_topic_score_gemma":0.9954874,"teacher_disagreement_score":0.03853279,"about_ca_system_score_codex":0.03853279,"about_ca_system_score_gemma":0.023533098,"threshold_uncertainty_score":0.2795763},"labels":[],"label_agreement":null},{"id":"W9947094","doi":"10.1103/physrevb.38.6295","title":"Rhetoric and the Incommensurability of Values","year":2003,"lang":"en","type":"article","venue":"Physical review. B, Condensed matter","topic":"Rhetoric and Communication Studies","field":"Arts and Humanities","cited_by":0,"is_retracted":false,"has_abstract":false,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Windsor","funders":"","keywords":"Rhetoric; Epistemology; Political science; Philosophy; Linguistics","score_opus":0.03086569088676864,"score_gpt":0.29663552141152255,"score_spread":0.2657698305247539,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W9947094","genre_codex":"other","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.11097492,0.09982416,0.050293434,0.12620349,0.0022261718,0.00008214154,0.00028358592,0.00012380465,0.60998833],"genre_scores_gemma":[0.9702167,0.014140793,0.0051433747,0.0035209123,0.001116022,0.00009756789,0.00010210878,0.000048579044,0.0056139086],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9871552,0.007997612,0.0004764462,0.0008950593,0.0028769686,0.00059868523],"domain_scores_gemma":[0.95447797,0.03764212,0.0022492714,0.0029977374,0.0021672968,0.0004655874],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.013479019,0.00041697634,0.0009014996,0.0032809866,0.0027657344,0.008870966,0.0010537093,0.0038646099,0.0052711284],"category_scores_gemma":[0.048514158,0.0004492705,0.00043246677,0.0022380936,0.031509943,0.013017391,0.0031934087,0.00388254,0.0007824107],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000014517957,0.000004432078,0.00009264519,0.000071226175,0.0000078332405,0.0000393492,0.0008467911,0.00016072221,0.00007817274,0.99109745,0.001276289,0.006310501],"study_design_scores_gemma":[0.000012304771,0.0000107814385,0.00022277376,0.00009604746,0.0000067873802,0.000054748118,0.0003074477,0.00017214015,0.0001243595,0.9864395,0.012547313,0.0000056579247],"about_ca_topic_score_codex":0.000933449,"about_ca_topic_score_gemma":0.0006855348,"teacher_disagreement_score":0.013479019,"about_ca_system_score_codex":0.0032843847,"about_ca_system_score_gemma":0.0028701306,"threshold_uncertainty_score":0.07128477},"labels":[],"label_agreement":null}]}