JUNO physics and detector

被引:168
作者
Abusleme, Angel [5 ]
Adam, Thomas [46 ]
Ahmad, Shakeel [73 ]
Ahmed, Rizwan [73 ]
Aiello, Sebastiano [56 ,57 ]
Akram, Muhammad [73 ]
An, Fengpeng [30 ]
An, Guangpeng [10 ]
An, Qi [22 ]
Andronico, Giuseppe [56 ,57 ]
Anfimov, Nikolay [74 ]
Antonelli, Vito [60 ,61 ]
Antoshkina, Tatiana [74 ]
Asavapibhop, Burin [78 ]
Auguste, Didier [44 ]
Babic, Andrej [77 ]
Baldini, Wander [58 ,59 ]
Barresi, Andrea [62 ,63 ]
Baussan, Eric [46 ]
Bellato, Marco [65 ]
Bergnoli, Antonio [65 ]
Bernieri, Enrico [70 ,71 ]
Birkenfeld, Thilo [49 ]
Blin, Sylvie [44 ]
Blum, David [55 ]
Blyth, Simon [41 ]
Bolshakova, Anastasia [74 ]
Bongrand, Mathieu [48 ]
Breton, Dominique [44 ]
Brigatti, Augusto [60 ,61 ]
Brugnera, Riccardo [65 ,66 ]
Bruno, Riccardo [56 ,57 ]
Budano, Antonio [70 ,71 ]
Buscemi, Mario [56 ,57 ]
Busto, Jose [47 ]
Butorov, Ilya [74 ]
Cabrera, Anatael [44 ]
Cai, Hao [35 ]
Cai, Xiao [10 ]
Cai, Yanke [10 ]
Cai, Zhiyan [10 ]
Cammi, Antonio [62 ,64 ]
Campeny, Agustin [5 ]
Cao, Chuanya [10 ]
Cao, Guofu [10 ]
Cao, Jun [10 ]
Caruso, Rossella [56 ,57 ]
Chang, Jin-fan [10 ]
Chang, Yun [40 ]
Chen, Pingping [18 ]
机构
[1] Yerevan Phys Inst, Yerevan, Armenia
[2] Univ Libre Bruxelles, Brussels, Belgium
[3] Univ Estadual Londrina, Londrina, Parana, Brazil
[4] Pontificia Univ Catolica Rio de Janeiro, Rio De Janeiro, Brazil
[5] Pontificia Univ Catolica Chile, Santiago, Chile
[6] Univ Tecn Federico Santa Maria, Valparaiso, Chile
[7] Beijing Inst Spacecraft Environm Engn, Beijing, Peoples R China
[8] Beijing Normal Univ, Beijing, Peoples R China
[9] China Inst Atom Energy, Beijing, Peoples R China
[10] Inst High Energy Phys, Beijing, Peoples R China
[11] North China Elect Power Univ, Beijing, Peoples R China
[12] Peking Univ, Sch Phys, Beijing, Peoples R China
[13] Tsinghua Univ, Beijing, Peoples R China
[14] Univ Chinese Acad Sci, Beijing, Peoples R China
[15] Jilin Univ, Changchun, Peoples R China
[16] Natl Univ Def Technol, Coll Elect Sci & Engn, Changsha, Peoples R China
[17] Chongqing Univ, Chongqing, Peoples R China
[18] Dongguan Univ Technol, Dongguan, Peoples R China
[19] Jinan Univ, Guangzhou, Peoples R China
[20] Sun Yat Sen Univ, Guangzhou, Peoples R China
[21] Harbin Inst Technol, Harbin, Peoples R China
[22] Univ Sci & Technol China, Hefei, Peoples R China
[23] Univ South China, Radiochem & Nucl Chem Grp, Hengyang, Peoples R China
[24] Wuyi Univ, Jiangmen, Peoples R China
[25] Shandong Univ, Jinan, Peoples R China
[26] Shandong Univ, Key Lab Particle Phys & Particle Irradiat, Minist Educ, Qingdao, Peoples R China
[27] Chinese Acad Sci, Inst Modern Phys, Lanzhou, Peoples R China
[28] Nanjing Univ, Nanjing, Peoples R China
[29] Guangxi Univ, Nanning, Peoples R China
[30] East China Univ Sci & Technol, Shanghai, Peoples R China
[31] Shanghai Jiao Tong Univ, Sch Phys & Astron, Shanghai, Peoples R China
[32] Shanghai Jiao Tong Univ, Tsung Dao Lee Inst, Shanghai, Peoples R China
[33] Chinese Acad Geol Sci, Inst Hydrogeol & Environm Geol, Shijiazhuang, Hebei, Peoples R China
[34] Nankai Univ, Tianjin, Peoples R China
[35] Wuhan Univ, Wuhan, Peoples R China
[36] Xiao Jiaotong Univ, Xian, Peoples R China
[37] Xiamen Univ, Xiamen, Peoples R China
[38] Zhengzhou Univ, Sch Phys & Microelect, Zhengzhou, Peoples R China
[39] Natl Chiao Tung Univ, Inst Phys, Hsinchu, Taiwan
[40] Natl United Univ, Miaoli, Taiwan
[41] Natl Taiwan Univ, Dept Phys, Taipei, Taiwan
[42] Charles Univ Prague, Fac Math & Phys, Prague, Czech Republic
[43] Univ Jyvaskyla, Dept Phys, Jyvaskyla, Finland
[44] Univ Paris Saclay, IJCLab, CNRS IN2P3, F-91405 Orsay, France
[45] Univ Bordeaux, CENBG, CNRS, UMR 5797, F-33170 Gradignan, France
[46] Univ Strasbourg, IPHC, CNRS IN2P3, F-67037 Strasbourg, France
[47] Ctr Phys Particules Marseille, Marseille, France
[48] Univ Nantes, IMT Atlantique, SUBATECH, CNRS IN2P3, Nantes, France
[49] Rhein Westfal TH Aachen, Phys Inst B 3, Aachen, Germany
[50] Univ Hamburg, Inst Expt Phys, Hamburg, Germany
基金
俄罗斯科学基金会; 中国国家自然科学基金; 国家重点研发计划;
关键词
JUNO; neutrino physics; neutrino detector; NEUTRON FISSION-PRODUCTS; Q-BALLS; ANTINEUTRINO SPECTRA; MAGNETIC MONOPOLES; REACTOR; NEUTRINOS; SEARCH; SYSTEM; MATTER; OSCILLATIONS;
D O I
10.1016/j.ppnp.2021.103927
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
The Jiangmen Underground Neutrino Observatory (JUNO) is a 20 kton liquid scintillator detector in a laboratory at 700-m underground. An excellent energy resolution and a large fiducial volume offer exciting opportunities for addressing many important topics in neutrino and astro-particle physics. With six years of data, the neutrino mass ordering can be determined at a 3-4 sigma significance and the neutrino oscillation parameters sin(2 )theta(12), Delta m(21)(2), and vertical bar Delta m(32)(2)vertical bar can be measured to a precision of 0.6% or better, by detecting reactor antineutrinos from the Taishan and Yangjiang nuclear power plants. With ten years of data, neutrinos from all past core-collapse supernovae could be observed at a 3 sigma significance; a lower limit of the proton lifetime, 8.34 x 10(33) years (90% C.L.), can be set by searching for p -> (nu) over barK(+); detection of solar neutrinos would shed new light on the solar metallicity problem and examine the vacuum-matter transition region. A typical core-collapse supernova at a distance of 10 kpc would lead to similar to 5000 inverse-beta-decay events and similar to 2000 (300) all-flavor neutrino-proton (electron) elastic scattering events in JUNO. Geo-neutrinos can be detected with a rate of similar to 400 events per year. Construction of the detector is very challenging. In this review, we summarize the final design of the JUNO detector and the key R&D achievements, following the Conceptual Design Report in 2015 (Djurcic et al., 2015). All 20-inch PMTS have been procured and tested. The average photon detection efficiency is 28.9% for the 15,000 MCP PMTS and 28.1% for the 5000 dynode PMTS, higher than the JUNO requirement of 27%. Together with the >20 m attenuation length of the liquid scintillator achieved in a 20-ton pilot purification test and the >96% transparency of the acrylic panel, we expect a yield of 1345 photoelectrons per MeV and an effective relative energy resolution of 3.02%/root E(MeV) in simulations (Abusleme et al., 2021). To maintain the high performance, the underwater electronics is designed to have a loss rate <0.5% in six years. With degassing membranes and a micro-bubble system, the radon concentration in the 35 kton water pool could be lowered to <10 mBq/m(3). Acrylic panels of radiopurity <0.5 ppt U/Th for the 35.4-m diameter liquid scintillator vessel are produced with a dedicated production line. The 20 kton liquid scintillator will be purified onsite with Alumina filtration, distillation, water extraction, and gas stripping. Together with other low background handling, singles in the fiducial volume can be controlled to similar to 10 Hz. The JUNO experiment also features a double calorimeter system with 25,600 3-inch PMTS, a liquid scintillator testing facility OSIRIS, and a near detector TAO. (C) 2021 Elsevier B.V. All rights reserved.
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页数:51
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