Accès ouvert déclaré
2024
preprint
Charged-current non-standard neutrino interactions at Daya Bay
Daya Bay collaboration, Fengpeng An, Wenqi Bai, A. B. Balantekin, M. Bishai, S. Blyth, G. F. Cao, Jun Cao, J. F. Chang, Yoosoo Chang, H. S. Chen, H. Y. Chen, Shaomin Chen, Y. Chen, Y. X. Chen, Z. Y. Chen, Jie Cheng, Yin Cheong Cheng, Zhaokan Cheng, J. J. Cherwinka, M. C. Chu, J. P. Cummings, O. Dalager, F. S. Deng, Xinjian Ding, Y. Y. Ding, M. Diwan, Tadeáš Dohnal, Dmitry Dolzhikov, J. Dove, Katherine Dugas, Hongyue Duyang, D. A. Dwyer, J. P. Gallo, M. Gonchar, G. H. Gong, Hao Gong, W. Gu, J. Y. Guo, Lei Guo, X. H. Guo, Yuhang Guo, Zhen Guo, R. Hackenburg, Yang Han, S. Hans, M. He, K. M. Heeger, Y. K. Heng, Y. K. Hor, Y. Hsiung, Beibei Hu, Z. Hu, T. Hu, Zhongfa Hu, H. X. Huang, Jihong Huang, X. T. Huang, Y. B. Huang, P. Huber, D. E. Jaffe, K. L. Jen, X. L. Ji, Xihan Ji, R. A. Johnson, D. Jones, Lin Kang, S. H. Kettell, S. Kohn, M. J. Kramer, T. J. Langford, J. Lee, J. H. C. Lee, R. T. Lei, R. Leitner, J. K. C. Leung, F. Li, H. L. Li, J. J. Li, Q. J. Li, R. H. Li, S. Li, Shirley Weishi Li, S. Li, W. D. Li, X. N. Li, X. Q. Li, Yufeng Li, Z. B. Li, H. Liang, Chien‐Yu Lin, G. L. Lin, S. Y. Lin, J. J. Ling, J. M. Link, L. Littenberg, B. R. Littlejohn, J. C. Liu, J. L. Liu, J. X. Liu, Chuan Lü, H. Q. Lu, K. B. Luk, B. Z. Ma, X. B. Ma, X. Y. Ma, Y. Q. Ma, R. C. Mandujano, C. Marshall, K. T. McDonald, R. D. McKeown, Yaru Meng, J. Napolitano, D. Naumov, E. Naumova, T. M. T. Nguyen, J. P. Ochoa‐Ricoux, A. Olshevskiy, J. Park, S. Patton, J. C. Peng, C. S. J. Pun, F. Z. Qi, M. Qi, X. Qian, N. Raper, Jie Ren, C. Morales Reveco, R. Rosero, B. Roskovec, X. C. Ruan, B. Russell, H. Steiner, J. L. Sun, Tomáš Tměj, W. -H. Tse, C. E. Tull, Y. C. Tung, B. Viren, V. Vorobel, C. H. Wang, Jiazhao Wang, Meng Wang, N. Y. Wang, R. G. Wang, W. Wang, Xiaogang Wang, Y. F. Wang, Ziyi Wang, Zhimin Wang, H. Wei, Lianghong Wei, W. Wei, L. J. Wen, K. Whisnant, C. White, H. L. H. Wong, E. Worcester, Diru Wu, Q. Wu, W. Wu, D. M. Xia, Z. Q. Xie, Z. Z. Xing, Huaiyu Xu, Jilei Xu, T. Xu, T. Xue, C.G. Yang, Luxi Yang, Y. Z. Yang, Hang Yao, M. Ye, M. Yeh, Ben Young, H. Z. Yu, Zhao Yu, B. B. Yue, Vitalii Zavadskyi, S. H. Zeng, Y. Zeng, Liang Zhan, C. Zhang, Feifan Zhang, H. H. Zhang, J. L. Zhang, J. W. Zhang, Qingmin Zhang, S. Q. Zhang, X. T. Zhang, Y. M. Zhang, Y. X. Zhang, Y. Y. Zhang, Z. J. Zhang, Z. P. Zhang, Z. Y. Zhang, Jiashu Zhao, R. Z. Zhao, Lijuan Zhou, H. L. Zhuang, J. H. Zou
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Le résumé fourni par la source
The full data set of the Daya Bay reactor neutrino experiment is used to probe the effect of the charged current non-standard interactions (CC-NSI) on neutrino oscillation experiments. Two different approaches are applied and constraints on the corresponding CC-NSI parameters are obtained with the neutrino flux taken from the Huber-Mueller model with a $5\%$ uncertainty. For the quantum mechanics-based approach (QM-NSI), the constraints on the CC-NSI parameters $ε_{eα}$ and $ε_{eα}^{s}$ are extracted with and without the assumption that the effects of the new physics are the same in the production and detection processes, respectively. The approach based on the weak effective field theory (WEFT-NSI) deals with four types of CC-NSI represented by the parameters $[\varepsilon_{X}]_{eα}$. For both approaches, the results for the CC-NSI parameters are shown for cases with various fixed values of the CC-NSI and the Dirac CP-violating phases, and when they are allowed to vary freely. We find that constraints on the QM-NSI parameters $ε_{eα}$ and $ε_{eα}^{s}$ from the Daya Bay experiment alone can reach the order $\mathcal{O}(0.01)$ for the former and $\mathcal{O}(0.1)$ for the latter, while for WEFT-NSI parameters $[\varepsilon_{X}]_{eα}$, we obtain $\mathcal{O}(0.1)$ for both cases.
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Les sujets associés
Astrophysics and Cosmic PhenomenaNeutrino Physics Research