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Antineutrino Energy Spectrum Unfolding Based on the Daya Bay Measurement and Its Applications

Authors :
Jinjuan Ren
Dmitry Dolzhikov
Haifeng Li
Yuman Wang
S. Zeng
W. Q. Gu
Z. M. Wang
X. L. Ji
Minfang Yeh
Y. X. Zhang
C. Morales Reveco
Michael Kramer
Yufeng Li
K. L. Jen
Tomas Tmej
J. P. Gallo
Chun S. J. Pun
Zhuojun Hu
Shaomin Chen
Jun Cao
Haifeng Yao
J. J. Cherwinka
S. F. Li
Bangzheng Ma
Dmitry V. Naumov
Yinhong Zhang
Yongzhu Chen
Yue Meng
Q. J. Li
H. R. Pan
Kam-Biu Luk
N. Raper
H. Liang
Yixue Chen
Hongzhao Yu
Olivia Dalager
Z. Guo
D. C. Jones
Hanxiong Huang
L. Kang
N. Y. Wang
B. Viren
X. T. Huang
Tianpeng Xu
A. B. Balantekin
C. G. Yang
Zhi-zhong Xing
Baobiao Yue
W. J. Wu
Y. Z. Yang
R. D. McKeown
C. E. Tull
S. Kohn
L. H. Wei
Rong Zhao
R. T. Lei
F. Li
Simon Blyth
R. C. Mandujano
Guanghua Gong
Li Zhou
S. Hans
M. Z. Wang
Ming Chung Chu
W. H. Tse
Diru Wu
M. Ye
Jingyuan Guo
Chi Lin
K. T. McDonald
F. L. Wu
Jen-Chieh Peng
Y. K. Hor
Jianrun Hu
Qinglong Wu
Junwei Huang
Jianglai Liu
J. Dove
Yuda Zeng
J. M. Link
J. P. Cummings
L. Guo
Alexander Olshevskiy
M. Qi
Tian Xue
M. Bishai
Chao Zhang
S. J. Patton
Y. K. Heng
H. S. Chen
Xiaohui Qian
J. Lee
H. Y. Wei
K. M. Heeger
Zhijian Zhang
Rupert Leitner
L. S. Littenberg
H. L. H. Wong
H. H. Zhang
H. L. Zhuang
K. Treskov
Richard Rosero
Juan Pedro Ochoa-Ricoux
X. Wang
J. J. Ling
B. R. Littlejohn
M. Grassi
D. E. Jaffe
Miao He
E. Naumova
D. A. Dwyer
B. Z. Hu
Haoqi Lu
T. J. Langford
Ruhui Li
Yaoyu Zhang
Y. B. Huang
Vitalii Zavadskyi
Y. F. Wang
Y. H. Chang
Vit Vorobel
S. Zhang
Jing Wang
T. Hu
Xiaolu Ji
Wei Li
H. M. Steiner
R. W. Hackenburg
Y. Q. Ma
Z. Wang
Honghan Gong
K. Whisnant
Zhiyong Zhang
J. Cheng
Yuhang Guo
B. Roskovec
Jiaheng Zou
D. M. Xia
F. S. Deng
Bing-Lin Young
Liangjian Wen
Guofu Cao
X. C. Ruan
Z. K. Cheng
Z. P. Zhang
Jianmin Li
Y. Y. Ding
Fengpeng An
Zhangquan Xie
Qingmin Zhang
Jim Napolitano
W. Wang
Y. B. Hsiung
Z. Y. Yu
M. V. Diwan
X. Q. Li
H. K. Xu
Patrick Huber
Tadeas Dohnal
J. L. Sun
X. T. Zhang
J. Park
T. M. T. Nguyen
J. H. C. Lee
Z. B. Li
Shengxin Lin
E. T. Worcester
Lin Yang
F. Z. Qi
Jinmei Liu
Jing Zhao
X. Y. Ma
Christopher L. Marshall
J. F. Chang
X. H. Guo
Jiawen Zhang
M. Dvořák
C. H. Wang
R. G. Wang
Feiyang Zhang
Liang Zhan
Christopher G. White
C. Lu
J. L. Xu
Shanfeng Li
Guey-Lin Lin
Jian Liu
J. K. C. Leung
S. H. Kettell
X. B. Ma
Maxim Gonchar
Xinglong Li
R. A. Johnson
Source :
Chinese Physics
Publication Year :
2021

Abstract

The prediction of reactor antineutrino spectra will play a crucial role as reactor experiments enter the precision era. The positron energy spectrum of 3.5 million antineutrino inverse beta decay reactions observed by the Daya Bay experiment, in combination with the fission rates of fissile isotopes in the reactor, is used to extract the positron energy spectra resulting from the fission of specific isotopes. This information can be used to produce a precise, data-based prediction of the antineutrino energy spectrum in other reactor antineutrino experiments with different fission fractions than Daya Bay. The positron energy spectra are unfolded to obtain the antineutrino energy spectra by removing the contribution from detector response with the Wiener-SVD unfolding method. Consistent results are obtained with other unfolding methods. A technique to construct a data-based prediction of the reactor antineutrino energy spectrum is proposed and investigated. Given the reactor fission fractions, the technique can predict the energy spectrum to a 2% precision. In addition, we illustrate how to perform a rigorous comparison between the unfolded antineutrino spectrum and a theoretical model prediction that avoids the input model bias of the unfolding method.<br />22 pages, 10 figures, 6 supplemental materials

Details

Language :
English
Database :
OpenAIRE
Journal :
Chinese Physics
Accession number :
edsair.doi.dedup.....040549a1e72d988a2713254fafff067b