학술논문

Luminous signals of inelastic dark matter in large detectors
Document Type
article
Source
Journal of High Energy Physics, Vol 2019, Iss 9, Pp 1-29 (2019)
Subject
Beyond Standard Model
Cosmology of Theories beyond the SM
Nuclear and particle physics. Atomic energy. Radioactivity
QC770-798
Language
English
ISSN
1029-8479
Abstract
Abstract We study luminous dark matter signals in models with inelastic scattering. Dark matter χ 1 that scatters inelastically off elements in the Earth is kicked into an excited state χ 2 that can subsequently decay into a monoenergetic photon inside a detector. The photon signal exhibits large sidereal-daily modulation due to the daily rotation of the Earth and anisotropies in the problem: the dark matter wind comes from the direction of Cygnus due to the Sun's motion relative to the galaxy, and the rock overburden is anisotropic, as is the dark matter scattering angle. This allows outstanding separation of signal from backgrounds. We investigate the sensitivity of two classes of large underground detectors to this modulating photon line signal: large liquid scintillator neutrino experiments, including Borexino and JUNO, and the proposed large gaseous scintillator directional detection experiment CYGNUS. Borexino's (JUNO's) sensitivity exceeds the bounds from xenon experiments on inelastic nuclear recoil for mass splittings δ > ˜ $$ \delta \underset{\sim }{>} $$ 240 (180) keV, and is the only probe of inelastic dark matter for 350 keV < ˜ δ < ˜ $$ \underset{\sim }{