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Physics prospects of the Jinping neutrino experiment    

Physics prospects of the Jinping neutrino experiment

文献类型:期刊文献

中文题名:Physics prospects of the Jinping neutrino experiment

英文题名:Physics prospects of the Jinping neutrino experiment

作者:John F.Beacom[1];陈少敏[2];程建平[2];Sayed N.Doustimotlagh[2];高原宁[2];龚光华[2];宫辉[2];郭磊[2];韩然[3];何红建[2];黄性涛[4];李荐民[2];李金[2];李默涵[2];李学潜[5];廖玮[6];林贵林[7];刘佐伟[2];William Mc Donough[8];Ondˇrej rmek[9];唐健[10];万林焱[2];王元清[11];王喆[2];王综轶[11];魏瀚宇[2];习宇飞[12];徐晔[13];许勋杰[2];杨振伟[2];姚春发[14];Minfang Yeh[15];岳骞[2];张黎明[2];张洋[2];赵志宏[11];郑阳恒[16];周详[17];朱相雷[2];Kai Zuber[18]

机构:[1]Dept. of Physics, Dept. of Astronomy, and CCAPP, The Ohio State University;[2]Department of Engineering Physics,Tsinghua University;[3]Science and Technology on Reliability and Environmental Engineering Laboratory,Beijing Institute of Spacecraft Environment Engineering;[4]School of Physics, Shandong University;[5]School of Physics, Nankai University;[6]Institute of Modern Physics, East China University of Science and Technology;[7]Institute of Physics, National Chiao-Tung University;[8]University of Maryland, College Park;[9]Department of Geophysics, Faculty of Mathematics and Physics, Charles University in Prague;[10]School of Physics, Sun Yat-Sen University;[11]Department of Civil Engineering, Tsinghua University;[12]Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences;[13]Fujian University of Technology;[14]Department of Structural Steels, China Iron & Steel Research Institute Group;[15]Brookhaven National Laboratory;[16]School of Physical Sciences, University of Chinese Academy of Sciences;[17]School of Physics and Technology, Wuhan University;[18]Institut für Kern- und Teilchenphysik, Technische Universitt Dresden

年份:2017

卷号:41

期号:2

起止页码:9

中文期刊名:Chinese Physics C

外文期刊名:中国物理C(英文版)

收录:CSTPCD;;Scopus;CSCD:【CSCD2017_2018】;

基金:Supported by the National Natural Science Foundation of China(11235006,11475093,11135009,11375065,11505301,and11620101004);the Tsinghua University Initiative Scientific Research Program(20121088035,20131089288,and 20151080432);the Key Laboratory of Particle&Radiation Imaging(Tsinghua University);the CAS Center for Excellence in Particle Physics(CCEPP);U.S.National Science Foundation Grant PHY-1404311(Beacom);U.S.Department of Energy under contract DE-AC02-98CH10886(Yeh)

语种:中文

中文关键词:CJPL; Jinping neutrino experiment; solar neutrino; geo-neutrino; supernova neutrino;

外文关键词:CJPL; Jinping neutrino experiment; solar neutrino; geo-neutrino; supernova neutrino;

摘要:The China Jinping Underground Laboratory(CJPL), which has the lowest cosmic-ray muon flux and the lowest reactor neutrino flux of any laboratory, is ideal to carry out low-energy neutrino experiments. With two detectors and a total fiducial mass of 2000 tons for solar neutrino physics(equivalently, 3000 tons for geo-neutrino and supernova neutrino physics), the Jinping neutrino experiment will have the potential to identify the neutrinos from the CNO fusion cycles of the Sun, to cover the transition phase for the solar neutrino oscillation from vacuum to matter mixing, and to measure the geo-neutrino flux, including the Th/U ratio. These goals can be fulfilled with mature existing techniques. Efforts on increasing the target mass with multi-modular neutrino detectors and on developing the slow liquid scintillator will increase the Jinping discovery potential in the study of solar neutrinos,geo-neutrinos, supernova neutrinos, and dark matter.
The China Jinping Underground Laboratory(CJPL), which has the lowest cosmic-ray muon flux and the lowest reactor neutrino flux of any laboratory, is ideal to carry out low-energy neutrino experiments. With two detectors and a total fiducial mass of 2000 tons for solar neutrino physics(equivalently, 3000 tons for geo-neutrino and supernova neutrino physics), the Jinping neutrino experiment will have the potential to identify the neutrinos from the CNO fusion cycles of the Sun, to cover the transition phase for the solar neutrino oscillation from vacuum to matter mixing, and to measure the geo-neutrino flux, including the Th/U ratio. These goals can be fulfilled with mature existing techniques. Efforts on increasing the target mass with multi-modular neutrino detectors and on developing the slow liquid scintillator will increase the Jinping discovery potential in the study of solar neutrinos,geo-neutrinos, supernova neutrinos, and dark matter.

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