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Experimental Limits on Solar Reflected Dark Matter with a New Approach on Accelerated-Dark-Matter-Electron Analysis in Semiconductors.

Authors :
Zhang ZY
Yang LT
Yue Q
Kang KJ
Li YJ
An HP
C G
Chang JP
Chen YH
Cheng JP
Dai WH
Deng Z
Fang CH
Geng XP
Gong H
Guo QJ
Guo T
Guo XY
He L
He SM
Hu JW
Huang HX
Huang TC
Jiang L
Karmakar S
Li HB
Li HY
Li JM
Li J
Li QY
Li RMJ
Li XQ
Li YL
Liang YF
Liao B
Lin FK
Lin ST
Liu JX
Liu SK
Liu YD
Liu Y
Liu YY
Ma H
Mao YC
Nie QY
Ning JH
Pan H
Qi NC
Ren J
Ruan XC
Singh MK
Sun TX
Tang CJ
Tian Y
Wang GF
Wang JZ
Wang L
Wang Q
Wang YF
Wang YX
Wong HT
Wu SY
Wu YC
Xing HY
Xu R
Xu Y
Xue T
Yan YL
Yi N
Yu CX
Yu HJ
Yue JF
Zeng M
Zeng Z
Zhang BT
Zhang FS
Zhang L
Zhang ZH
Zhao JZ
Zhao KK
Zhao MG
Zhou JF
Zhou ZY
Zhu JJ
Source :
Physical review letters [Phys Rev Lett] 2024 Apr 26; Vol. 132 (17), pp. 171001.
Publication Year :
2024

Abstract

Recently a dark matter-electron (DM-electron) paradigm has drawn much attention. Models beyond the standard halo model describing DM accelerated by high energy celestial bodies are under intense examination as well. In this Letter, a velocity components analysis (VCA) method dedicated to swift analysis of accelerated DM-electron interactions via semiconductor detectors is proposed and the first HPGe detector-based accelerated DM-electron analysis is realized. Utilizing the method, the first germanium based constraint on sub-GeV solar reflected DM-electron interaction is presented with the 205.4  kg·day dataset from the CDEX-10 experiment. In the heavy mediator scenario, our result excels in the mass range of 5-15  keV/c^{2}, achieving a 3 orders of magnitude improvement comparing with previous semiconductor experiments. In the light mediator scenario, the strongest laboratory constraint for DM lighter than 0.1  MeV/c^{2} is presented. The result proves the feasibility and demonstrates the vast potential of the VCA technique in future accelerated DM-electron analyses with semiconductor detectors.

Details

Language :
English
ISSN :
1079-7114
Volume :
132
Issue :
17
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
38728703
Full Text :
https://doi.org/10.1103/PhysRevLett.132.171001