학술논문

Search for a Light Sterile Neutrino at Daya Bay
Document Type
Working Paper
Author
An, F. P.Balantekin, A. B.Band, H. R.Beriguete, W.Bishai, M.Blyth, S.Butorov, I.Cao, G. F.Cao, J.Chan, Y. L.Chang, J. F.Chang, L. C.Chang, Y.Chasman, C.Chen, H.Chen, Q. Y.Chen, S. M.Chen, X.Chen, Y. X.Chen, Y.Cheng, Y. P.Cherwinka, J. J.Chu, M. C.Cummings, J. P.de Arcos, J.Deng, Z. Y.Ding, Y. Y.Diwan, M. V.Draeger, E.Du, X. F.Dwyer, D. A.Edwards, W. R.Ely, S. R.Fu, J. Y.Ge, L. Q.Gill, R.Gonchar, M.Gong, G. H.Gong, H.Grassi, M.Gu, W. Q.Guan, M. Y.Guo, X. H.Hackenburg, R. W.Han, G. H.Hans, S.He, M.Heeger, K. M.Heng, Y. K.Hinrichs, P.Hor, Y. K.Hsiung, Y. B.Hu, B. Z.Hu, L. M.Hu, L. J.Hu, T.Hu, W.Huang, E. C.Huang, H.Huang, X. T.Huber, P.Hussain, G.Isvan, Z.Jaffe, D. E.Jaffke, P.Jen, K. L.Jetter, S.Ji, X. P.Ji, X. L.Jiang, H. J.Jiao, J. B.Johnson, R. A.Kang, L.Kettell, S. H.Kramer, M.Kwan, K. K.Kwok, M. W.Kwok, T.Lai, W. C.Lau, K.Lebanowski, L.Lee, J.Lei, R. T.Leitner, R.Leung, A.Leung, J. K. C.Lewis, C. A.Li, D. J.Li, F.Li, G. S.Li, Q. J.Li, W. D.Li, X. N.Li, X. Q.Li, Y. F.Li, Z. B.Liang, H.Lin, C. J.Lin, G. L.Lin, P. Y.Lin, S. K.Lin, Y. C.Ling, J. J.Link, J. M.Littenberg, L.Littlejohn, B. R.Liu, D. W.Liu, H.Liu, J. L.Liu, J. C.Liu, S. S.Liu, Y. B.Lu, C.Lu, H. Q.Luk, K. B.Ma, Q. M.Ma, X. Y.Ma, X. B.Ma, Y. Q.McDonald, K. T.McFarlane, M. C.McKeown, R. D.Meng, Y.Mitchell, I.Kebwaro, J. MonariNakajima, Y.Napolitano, J.Naumov, D.Naumova, E.Nemchenok, I.Ngai, H. Y.Ning, Z.Ochoa-Ricoux, J. P.Olshevski, A.Patton, S.Pec, V.Peng, J. C.Piilonen, L. E.Pinsky, L.Pun, C. S. J.Qi, F. Z.Qi, M.Qian, X.Raper, N.Ren, B.Ren, J.Rosero, R.Roskovec, B.Ruan, X. C.Shao, B. B.Steiner, H.Sun, G. X.Sun, J. L.Tam, Y. H.Tang, X.Themann, H.Tsang, K. V.Tsang, R. H. M.Tull, C. E.Tung, Y. C.Viren, B.Vorobel, V.Wang, C. H.Wang, L. S.Wang, L. Y.Wang, M.Wang, N. Y.Wang, R. G.Wang, W.Wang, W. W.Wang, X.Wang, Y. F.Wang, Z.Wang, Z. M.Webber, D. M.Wei, H. Y.Wei, Y. D.Wen, L. J.Whisnant, K.White, C. G.Whitehead, L.Wise, T.Wong, H. L. H.Wong, S. C. F.Worcester, E.Wu, Q.Xia, D. M.Xia, J. K.Xia, X.Xing, Z. Z.Xu, J. Y.Xu, J. L.Xu, J.Xu, Y.Xue, T.Yan, J.Yang, C. C.Yang, L.Yang, M. S.Yang, M. T.Ye, M.Yeh, M.Yeh, Y. S.Young, B. L.Yu, G. Y.Yu, J. Y.Yu, Z. Y.Zang, S. L.Zeng, B.Zhan, L.Zhang, C.Zhang, F. H.Zhang, J. W.Zhang, Q. M.Zhang, Q.Zhang, S. H.Zhang, Y. C.Zhang, Y. M.Zhang, Y. H.Zhang, Y. X.Zhang, Z. J.Zhang, Z. Y.Zhang, Z. P.Zhao, J.Zhao, Q. W.Zhao, Y.Zhao, Y. B.Zheng, L.Zhong, W. L.Zhou, L.Zhou, Z. Y.Zhuang, H. L.Zou, J. H.
Source
Phys. Rev. Lett. 113, 141802 (2014)
Subject
High Energy Physics - Experiment
Language
Abstract
A search for light sterile neutrino mixing was performed with the first 217 days of data from the Daya Bay Reactor Antineutrino Experiment. The experiment's unique configuration of multiple baselines from six 2.9~GW$_{\rm th}$ nuclear reactors to six antineutrino detectors deployed in two near (effective baselines 512~m and 561~m) and one far (1579~m) underground experimental halls makes it possible to test for oscillations to a fourth (sterile) neutrino in the $10^{\rm -3}~{\rm eV}^{2} < |\Delta m_{41}^{2}| < 0.3~{\rm eV}^{2}$ range. The relative spectral distortion due to electron antineutrino disappearance was found to be consistent with that of the three-flavor oscillation model. The derived limits on $\sin^22\theta_{14}$ cover the $10^{-3}~{\rm eV}^{2} \lesssim |\Delta m^{2}_{41}| \lesssim 0.1~{\rm eV}^{2}$ region, which was largely unexplored.
Comment: 7 pages, 4 figures