Direct observation of the Migdal effect induced by neutron bombardment
Abstract
Abstract The search for dark matter focuses now on hypothetical light particles with masses ranging from MeV to GeV (refs. 1–12 ). These particles would leave very faint signals experimentally. A potential avenue for enhancing experimental sensitivity to light matter relies on the Migdal effect 13–15 , which involves the detectable ejection of electrons following the instantaneous accelerations of atoms colliding with neutral dark matter. However, although the Migdal effect could be equally generated in controlled experiments with neutral projectiles, a direct experimental observation of this effect is missing, casting doubt on the reliability of detection experiments relying on this effect. Here we report the direct observation of the Migdal effect in neutron–nucleus collisions, achieving a statistical significance of 5 standard deviations, which rests on 6 candidate events selected out of almost 10 6 recorded events. Our experiments have determined the ratio of the Migdal cross-section to the nuclear recoil cross-section to be $${4.9}_{-1.9}^{+2.6}\times {10}^{-5}$$ 4.9 − 1.9 + 2.6 × 10 − 5 , in which nuclear recoils exceed 35 keVee and electron recoils span 5–10 keV. These findings are consistent with theoretical predictions. This work resolves a long-standing gap in experimental validation, which not only strengthens the theoretical foundation of the Migdal effect but also paves the way for its application in light dark matter detection.
Article Details
Authors (30)
Difan Yi
Qian Liu
Shi Chen
Chunlai Dong
Huanbo Feng
Chaosong Gao
Wenqian Huang
Xinmei Jing
Lingquan Kong
Jin Li
Peirong Li
Enwei Liang
Ruiting Ma
Chenguang Su
Liangliang Su
Junwei Sun
Dong Wang
Junrun Wang
Zheng Wei
Zeen Yao
Yunlinchen Yu
Yu Zhang
Xiangya Hospital, Central South University Changsha China
Shiqiang Zhou
Zhuo Zhou
Bin Zhu
Jie Zuo
Hongbang Liu
Xiangming Sun
Lei Wu
Yangheng Zheng