Not-so-inelastic Dark Matter

Fuente: arXiv
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Main Authors: Garcia, Giovani Dalla Valle, Kahlhoefer, Felix, Ovchynnikov, Maksym, Schwetz, Thomas
Format: Preprint
Published: 2024
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_version_ 1866917909153972224
author Garcia, Giovani Dalla Valle
Kahlhoefer, Felix
Ovchynnikov, Maksym
Schwetz, Thomas
author_facet Garcia, Giovani Dalla Valle
Kahlhoefer, Felix
Ovchynnikov, Maksym
Schwetz, Thomas
contents Models of inelastic (or pseudo-Dirac) dark matter commonly assume an accidental symmetry between the left-handed and right-handed mass terms in order to suppress diagonal couplings. We point out that this symmetry is unnecessary, because for Majorana fermions the diagonal couplings are not strongly constrained. Removing the requirement of such an ad-hoc symmetry instead relaxes the relic density constraint due to additional annihilation modes. We consider a simple UV-complete model realising this setup and study constraints from (in)direct detection, beam dump experiments and colliders. We identify two viable mass regions for the dark matter mass, around a few hundred MeV and around a few GeV, respectively. The former region will be fully tested by near-future analyses of NA64 and Belle II data, while the latter turns out to be challenging to explore even with future experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2405_08081
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Not-so-inelastic Dark Matter
Garcia, Giovani Dalla Valle
Kahlhoefer, Felix
Ovchynnikov, Maksym
Schwetz, Thomas
High Energy Physics - Phenomenology
High Energy Physics - Experiment
Models of inelastic (or pseudo-Dirac) dark matter commonly assume an accidental symmetry between the left-handed and right-handed mass terms in order to suppress diagonal couplings. We point out that this symmetry is unnecessary, because for Majorana fermions the diagonal couplings are not strongly constrained. Removing the requirement of such an ad-hoc symmetry instead relaxes the relic density constraint due to additional annihilation modes. We consider a simple UV-complete model realising this setup and study constraints from (in)direct detection, beam dump experiments and colliders. We identify two viable mass regions for the dark matter mass, around a few hundred MeV and around a few GeV, respectively. The former region will be fully tested by near-future analyses of NA64 and Belle II data, while the latter turns out to be challenging to explore even with future experiments.
title Not-so-inelastic Dark Matter
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
url https://arxiv.org/abs/2405.08081