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arXiv · 2608.29509

Low-energy Muon-Nucleon scattering experiment: LUNE (White Paper)

Abstract

The HIAF will provide high-intensity, high-quality muon beams with momenta from 0.5 to 7.5 GeV/c. This energy range is uniquely suited for precision muon scattering, bridging the gap between low-energy electron facilities and future high-energy lepton-ion colliders. In particular, HIAF will enable precision measurements with both positive and negative muon beams over a broad kinematic range, complementing existing electron-scattering facilities such as JLab, EicC and EIC. Based on HIAF muon source, the LUNE Collaboration has been established to address several fundamental questions in nuclear and particle physics, including the proton charge radius puzzle, nucleon electromagnetic structure, and the dynamics of quantum electrodynamics and hadronic interactions. The program proceeds in two phases, from elastic scattering to nucleon structure and beyond-Standard-Model searches. The experiment is expected to determine the proton charge radius with a precision of approximately 1.0\% using elastic muon-proton scattering. It will also perform systematic measurements of the proton electromagnetic form factors with both $\mu^+$ and $\mu^-$ beams, enabling precise studies of two-photon exchange effects and stringent tests of quantum electrodynamics. Beyond elastic scattering, LUNE will investigate TMD, gravitational form factors, and nuclear charge radii, providing new insights into the 3D structure of nucleons and nuclei. The experiment will further address important topics including Coulomb-distortion corrections, nuclear medium effects, and possible signatures of physics beyond the Standard Model. This white paper presents the scientific motivation, detector concept, expected performance, and long-term strategy of LUNE.

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Chenlei An, Dong Bai, Ziyu Bai, Kai Chen, Liangwen Chen, Xiang Chen, Jianqiao Deng, Yanxin Dou, Yicheng Feng, Zekai Feng, Lu Gao, Chang Gong, Aiqiang Guo, Liang Han, Qundong Han, Defu Hou, Ruiwen Hou, Huigang Hu, Chen Ji, Xiangdong Ji, Vijay Kumar, Dikai Li, Jiuzhao Li, Liang Li, Qite Li, Xin-Qiang Li, Yuan Li, Qiming Liang, Yutie Liang, Dong Liu, Duanqing Liu, Langtian Liu, Weijie Liu, Zejia Lu, Maowu Nie, Ziwen Pan, Hua Pei, Jinkang Peng, Shusu Shi, Qintao Song, Xiaocheng Song, Xiangming Sun, Yichen Sun, Zhiyu Sun, Enke Wang, Fei Wang, Hulin Wang, Jike Wang, Xiang-Peng Wang, Xiao Wang, Xin-Nian Wang, Yangxi Wang, Yaping Wang, Zeren Simon Wang, Yanbing Wei, Yuehong Xie, Weizhi Xiong, Nu Xu, Yu Xu, Siqi Yang, Yadong Yang, Hang Yin, Xing-Bo Yuan, Dongliang Zhang, Ranyu Zhang, Ruitian Zhang, Xueheng Zhang, Yu Zhang, Yuxiang Zhao, Zihan Zhao, Shuai Zhou, XiaoKang Zhou, Xiaoyu Zhu. 2026-08-30. Low-energy Muon-Nucleon scattering experiment: LUNE (White Paper). https://arxiv.org/abs/2608.29509

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