Evolution of the Reactor Antineutrino Flux and Spectrum at Daya Bay

Fengpeng An(East China University of Science and Technology), A. B. Balantekin(University of Wisconsin–Madison), H. R. Band(Yale University), M. Bishai(Brookhaven National Laboratory), S. Blyth(National Taiwan University), D. Cao(Nanjing University), G. F. Cao(Institute of High Energy Physics), Jun Cao(Institute of High Energy Physics), Y. L. Chan(Chinese University of Hong Kong), J. F. Chang(Institute of High Energy Physics), Y. Chang(National United University), S. Chen(Institute of High Energy Physics), Q. Y. Chen(Shandong University), Shi-Yong Chen(Tsinghua University), Y. X. Chen(North China Electric Power University), Y. Chen(North China Electric Power University), Jie Cheng(Shandong University), Zhaokan Cheng(Sun Yat-sen University), J. J. Cherwinka(University of Wisconsin–Madison), M. C. Chu(Chinese University of Hong Kong), A. Chukanov(Joint Institute for Nuclear Research), J. P. Cummings(Siena College), Y. Y. Ding(Institute of High Energy Physics), M. Diwan(Brookhaven National Laboratory), M. Dolgareva(Joint Institute for Nuclear Research), J. Dove(University of Illinois Urbana-Champaign), D. A. Dwyer(Lawrence Berkeley National Laboratory), W. R. Edwards(Lawrence Berkeley National Laboratory), R. Gill(Brookhaven National Laboratory), M. Gonchar(Joint Institute for Nuclear Research), G. H. Gong(Tsinghua University), Haipeng Gong(Tsinghua University), M. Grassi(Institute of High Energy Physics), W. Gu(Shanghai Jiao Tong University), Lei Guo(Tsinghua University), Xin-Heng Guo(Beijing Normal University), Yuhang Guo(Xi'an Jiaotong University), Ziwei Guo(Tsinghua University), R. Hackenburg(Brookhaven National Laboratory), S. Hans(Brookhaven National Laboratory), M. He(Institute of High Energy Physics), K. M. Heeger(Yale University), Y. K. Heng(Institute of High Energy Physics), A. Higuera(University of Houston), Y. Hsiung(National Taiwan University), Beibei Hu(National Taiwan University), T. Hu(Institute of High Energy Physics), E.-C. Huang(University of Illinois Urbana-Champaign), H. X. Huang(China Institute of Atomic Energy), X. T. Huang(Shandong University), Y. B. Huang(Institute of High Energy Physics), Patrick Huber(Virginia Tech), W. Huo(University of Science and Technology of China), Ghulam Hussain(Tsinghua University), D. E. Jaffe(Brookhaven National Laboratory), K. L. Jen(National Yang Ming Chiao Tung University), X. Ji(Tsinghua University), X. L. Ji(Nankai University), J. B. Jiao(Shandong University), Rob Johnson(University of Cincinnati), D. Jones(Temple University), Li-Wei Kang(Dongguan University of Technology), S. H. Kettell(Brookhaven National Laboratory), Amir N. Khan(Sun Yat-sen University), S. Kohn(University of California, Berkeley), M. Krämer(Lawrence Berkeley National Laboratory), K. K. Kwan(Chinese University of Hong Kong), M. W. Kwok(Chinese University of Hong Kong), T. J. Langford(Yale University), K. Lau(University of Houston), L. Lebanowski(Tsinghua University), J. Lee(University of Hong Kong), J. H. C. Lee(Lawrence Berkeley National Laboratory), R. T. Lei(Dongguan University of Technology), R. Leitner(Charles University), J. K. C. Leung(University of Hong Kong), C. Li(Shandong University), D. J. Li(University of Science and Technology of China), F. Li(Institute of High Energy Physics), G. S. Li(Institute of Particle Physics), Q. J. Li(Institute of High Energy Physics), S. Li(Dongguan University of Technology), S. C. Li(Dongguan University of Technology), W. D. Li(Institute of High Energy Physics), X. N. Li(Institute of High Energy Physics), X. Q. Li(Nankai University), Yufeng Li(Institute of High Energy Physics), Z. B. Li(Sun Yat-sen University), H. Liang(University of Science and Technology of China), C. J. Lin(Lawrence Berkeley National Laboratory), G. L. Lin(National Yang Ming Chiao Tung University), S. Lin(Dongguan University of Technology), S. Lin(University of Houston), Y. C. Lin(National Taiwan University), J. J. Ling(Sun Yat-sen University), J. M. Link(Virginia Tech), L. Littenberg(Brookhaven National Laboratory), B. R. Littlejohn(Illinois Institute of Technology), J. L. Liu(Institute of Particle Physics), J. C. Liu(Shanghai Jiao Tong University), T. Lohse(Nanjing University), C. Lu(Princeton University), H. Q. Lu(Institute of High Energy Physics), J. S. Lu(Institute of High Energy Physics), X.-G. Lu(Lawrence Berkeley National Laboratory), X. Y.(Institute of High Energy Physics), X. B.(North China Electric Power University), Y. Q.(Institute of High Energy Physics), Yury Malyshkin(Pontificia Universidad Católica de Chile), D. A. Martínez Caicedo(Illinois Institute of Technology), K. T. McDonald(Princeton University), R. D. McKeown(Williams (United States)), I. V. Mitchell(University of Houston), Y. Nakajima(Lawrence Berkeley National Laboratory), J. Napolitano(Temple University), D. Naumov(Joint Institute for Nuclear Research), E. Naumova(Joint Institute for Nuclear Research), H. Y. Ngai(University of Hong Kong), J. P. Ochoa‐Ricoux(Pontificia Universidad Católica de Chile), A. Olshevskiy(Joint Institute for Nuclear Research), H.-R. Pan(National Taiwan University), J. Park(Virginia Tech), S. Patton(Lawrence Berkeley National Laboratory), V. Pec(Charles University), J. C. Peng(University of Illinois Urbana-Champaign), L. Pinsky(University of Houston), C. S. J. Pun(University of Hong Kong), F. Z. Qi(Institute of High Energy Physics), M. Qi(Nanjing University), X. Qian(Brookhaven National Laboratory), Rui Qiu(North China Electric Power University), N. Raper(Sun Yat-sen University), Jie Ren(China Institute of Atomic Energy), R. Rosero(Brookhaven National Laboratory), B. Roskovec(Charles University), Xichao Ruan(China Institute of Atomic Energy), H. Steiner(Lawrence Berkeley National Laboratory), P. Stoler(Rensselaer Polytechnic Institute), Jian Sun(China General Nuclear Power Corporation (China)), W. Tang(Brookhaven National Laboratory), D. Taychenachev(Joint Institute for Nuclear Research), Konstantin Treskov(Joint Institute for Nuclear Research), K. V. Tsang(Lawrence Berkeley National Laboratory), C. E. Tull(Lawrence Berkeley National Laboratory), N. Viaux Maira(Pontificia Universidad Católica de Chile), B. Viren(Brookhaven National Laboratory), V. Vorobel(Charles University), C. H. Wang(National United University), M. Wang(Shandong University), N. Y. Wang(Beijing Normal University), R. G. Wang(Institute of High Energy Physics), W. Wang(Williams (United States)), X. Wang(National University of Defense Technology), Y. F. Wang(Institute of High Energy Physics), Zhimin Wang(Institute of High Energy Physics), Zhimin Wang(Institute of High Energy Physics), Zhimin Wang(Institute of High Energy Physics), H. Wei(Tsinghua University), Liangjian Wen(Institute of High Energy Physics), K. Whisnant(Iowa State University), C. White(Illinois Institute of Technology), L. Whitehead(University of Houston), T. Wise(Yale University), H. L. H. Wong(University of California, Berkeley), S. C. F. Wong(Sun Yat-sen University), E. Worcester(Brookhaven National Laboratory), Chengxin Wu(National Yang Ming Chiao Tung University), Q. Wu(Shandong University), W. Wu(Institute of High Energy Physics), D. M. Xia(Chongqing University), J. K. Xia(Institute of High Energy Physics), Zezhou Xing(Institute of High Energy Physics), Jilei Xu(Institute of High Energy Physics), Y. Xu(Sun Yat-sen University), T. Xue(Tsinghua University), Changgen Yang(Institute of High Energy Physics), H. Yang(Nanjing University), L. Yang(Dongguan University of Technology), M. Yang(Shandong University), M. Yang(Institute of High Energy Physics), Yifan Yang(Sun Yat-sen University), M. Ye(Institute of High Energy Physics), Ziping Ye(University of Houston), M. Yeh(Brookhaven National Laboratory), B. L. Young(Iowa State University), Zeyuan Yu(Institute of High Energy Physics), S. Zeng(Institute of High Energy Physics), Liang Zhan(Institute of High Energy Physics), C. Zhang(Brookhaven National Laboratory), C. C. Zhang(Institute of High Energy Physics), H. H. Zhang(Sun Yat-sen University), J. W. Zhang(Institute of High Energy Physics), Qingmin Zhang(Xi'an Jiaotong University), R. Zhang(Nanjing University), Xueyao Zhang(Institute of High Energy Physics), Y. M. Zhang(Sun Yat-sen University), Y. X. Zhang(Tsinghua University), Y. M. Zhang(Tsinghua University), Z. J. Zhang(Institute of High Energy Physics), Zhiyong Zhang(Dongguan University of Technology), Z. P. Zhang(University of Science and Technology of China), J. Zhao(Institute of High Energy Physics), Liang Zhou(Institute of High Energy Physics), H.L. Zhuang(Institute of High Energy Physics), J. H. Zou(Institute of High Energy Physics)
Physical Review Letters
June 19, 2017
Cited by 203Open Access
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Abstract

The Daya Bay experiment has observed correlations between reactor core fuel evolution and changes in the reactor antineutrino flux and energy spectrum. Four antineutrino detectors in two experimental halls were used to identify 2.2 million inverse beta decays (IBDs) over 1230 days spanning multiple fuel cycles for each of six 2.9 GW_{th} reactor cores at the Daya Bay and Ling Ao nuclear power plants. Using detector data spanning effective ^{239}Pu fission fractions F_{239} from 0.25 to 0.35, Daya Bay measures an average IBD yield σ[over ¯]_{f} of (5.90±0.13)×10^{-43} cm^{2}/fission and a fuel-dependent variation in the IBD yield, dσ_{f}/dF_{239}, of (-1.86±0.18)×10^{-43} cm^{2}/fission. This observation rejects the hypothesis of a constant antineutrino flux as a function of the ^{239}Pu fission fraction at 10 standard deviations. The variation in IBD yield is found to be energy dependent, rejecting the hypothesis of a constant antineutrino energy spectrum at 5.1 standard deviations. While measurements of the evolution in the IBD spectrum show general agreement with predictions from recent reactor models, the measured evolution in total IBD yield disagrees with recent predictions at 3.1σ. This discrepancy indicates that an overall deficit in the measured flux with respect to predictions does not result from equal fractional deficits from the primary fission isotopes ^{235}U, ^{239}Pu, ^{238}U, and ^{241}Pu. Based on measured IBD yield variations, yields of (6.17±0.17) and (4.27±0.26)×10^{-43} cm^{2}/fission have been determined for the two dominant fission parent isotopes ^{235}U and ^{239}Pu. A 7.8% discrepancy between the observed and predicted ^{235}U yields suggests that this isotope may be the primary contributor to the reactor antineutrino anomaly.


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