TY - JOUR
T1 - Measurement of reactor neutrino oscillation with the first JUNO data
AU - The JUNO collaboration
AU - Züfle, Jan
AU - Zwickel, Sebastian
AU - Zou, Jiaheng
AU - Zong, Liang
AU - Zhuang, Honglin
AU - Zhuang, Bo
AU - Zhutikov, Ivan
AU - Zhu, Zhihang
AU - Zhu, Kejun
AU - Zhu, Kangfu
AU - Zhu, Jingyu
AU - Zhu, Jingsen
AU - Zhu, Jiang
AU - Zhu, Haiwen
AU - Zhou, Yan
AU - Zhou, Xing
AU - Zhou, Xiang
AU - Zhou, Tong
AU - Zhou, Shun
AU - Zhou, Min
AU - Zhou, Lishui
AU - Zhou, Li
AU - Zhou, Guorong
AU - Zhou, Albert
AU - Zhong, Weirong
AU - Zhong, Weili
AU - Zheng, Yangheng
AU - Zheng, Xiangyu
AU - Zheng, Hua
AU - Zheng, Dongqin
AU - Zhao, Yubin
AU - Zhao, Tianhao
AU - Zhao, Tianchi
AU - Zhao, Shujun
AU - Zhao, Runze
AU - Zhao, Rong
AU - Zhao, Mei
AU - Zhao, Liang
AU - Zhao, Jie
AU - Zhao, Fengyi
AU - Zhao, Baoqi
AU - Zhang, Zhixuan
AU - Zhang, Zhijian
AU - Zhang, Zhicheng
AU - Zhang, Zhenyu
AU - Zhang, Yuning
AU - Zhang, Jingbo
AU - Liu, Jianli
AU - Huo, Lei
AU - Feng, Qichun
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Limited 2026.
PY - 2026/6/11
Y1 - 2026/6/11
N2 - Neutrino oscillations (see refs. 1,2 and references therein), a quantum effect manifesting at macroscopic scales, are governed by lepton flavour mixing angles and neutrino mass-squared differences3 that are fundamental parameters of particle physics, representing phenomena beyond the Standard Model. Precision measurements of these parameters are essential for testing the completeness of the three-flavour framework, determining the mass ordering of neutrinos and probing possible new physics. The Jiangmen Underground Neutrino Observatory (JUNO)4 is a 20-ktonne liquid-scintillator detector located 52.5 km from multiple reactor cores, designed to resolve the interference pattern of reactor neutrinos with sub-percent precision5,6. Here we report, using the first 59.1 days of data collected since detector completion in August 2025, the first simultaneous high-precision determination of two neutrino oscillation parameters, sin2θ12=0.3092±0.0087 and Δm212=(7.50±0.12)×10-5eV2 for the normal mass ordering scenario, improving the precision by a factor of 1.6 relative to the combination of all previous measurements. These results advance the basic understanding of neutrinos, validate the design of the detector and indicate the readiness of JUNO for resolving the neutrino mass ordering with a larger dataset. The rapid achievement with a short exposure highlights the potential of JUNO to push the frontiers of precision neutrino physics and paves the way for its broad scientific programme.
AB - Neutrino oscillations (see refs. 1,2 and references therein), a quantum effect manifesting at macroscopic scales, are governed by lepton flavour mixing angles and neutrino mass-squared differences3 that are fundamental parameters of particle physics, representing phenomena beyond the Standard Model. Precision measurements of these parameters are essential for testing the completeness of the three-flavour framework, determining the mass ordering of neutrinos and probing possible new physics. The Jiangmen Underground Neutrino Observatory (JUNO)4 is a 20-ktonne liquid-scintillator detector located 52.5 km from multiple reactor cores, designed to resolve the interference pattern of reactor neutrinos with sub-percent precision5,6. Here we report, using the first 59.1 days of data collected since detector completion in August 2025, the first simultaneous high-precision determination of two neutrino oscillation parameters, sin2θ12=0.3092±0.0087 and Δm212=(7.50±0.12)×10-5eV2 for the normal mass ordering scenario, improving the precision by a factor of 1.6 relative to the combination of all previous measurements. These results advance the basic understanding of neutrinos, validate the design of the detector and indicate the readiness of JUNO for resolving the neutrino mass ordering with a larger dataset. The rapid achievement with a short exposure highlights the potential of JUNO to push the frontiers of precision neutrino physics and paves the way for its broad scientific programme.
UR - https://www.scopus.com/pages/publications/105041621832
U2 - 10.1038/s41586-026-10538-z
DO - 10.1038/s41586-026-10538-z
M3 - 文章
C2 - 42271023
AN - SCOPUS:105041621832
SN - 0028-0836
VL - 654
SP - 343
EP - 348
JO - Nature
JF - Nature
IS - 8118
ER -