Diurnal modulation signal from dissipative hidden sector dark matter

We consider a simple generic dissipative dark matter model: a hidden sector featuring two dark matter particles charged under an unbroken U(1)′ interaction. Previous work has shown that such a model has the potential to explain dark matter phenomena on both large and small scales. In this framework,...

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Main Authors: R. Foot, S. Vagnozzi
Format: Article
Language:English
Published: Elsevier 2015-09-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269315004852
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spelling doaj-40ab1a5cd37041e483b1746d2dbcc8502020-11-24T21:39:28ZengElsevierPhysics Letters B0370-26931873-24452015-09-01748C616610.1016/j.physletb.2015.06.063Diurnal modulation signal from dissipative hidden sector dark matterR. FootS. VagnozziWe consider a simple generic dissipative dark matter model: a hidden sector featuring two dark matter particles charged under an unbroken U(1)′ interaction. Previous work has shown that such a model has the potential to explain dark matter phenomena on both large and small scales. In this framework, the dark matter halo in spiral galaxies features nontrivial dynamics, with the halo energy loss due to dissipative interactions balanced by a heat source. Ordinary supernovae can potentially supply this heat provided kinetic mixing interaction exists with strength ϵ∼10−9. This type of kinetically mixed dark matter can be probed in direct detection experiments. Importantly, this self-interacting dark matter can be captured within the Earth and shield a dark matter detector from the halo wind, giving rise to a diurnal modulation effect. We estimate the size of this effect for detectors located in the Southern hemisphere, and find that the modulation is large (≳10%) for a wide range of parameters.http://www.sciencedirect.com/science/article/pii/S0370269315004852
collection DOAJ
language English
format Article
sources DOAJ
author R. Foot
S. Vagnozzi
spellingShingle R. Foot
S. Vagnozzi
Diurnal modulation signal from dissipative hidden sector dark matter
Physics Letters B
author_facet R. Foot
S. Vagnozzi
author_sort R. Foot
title Diurnal modulation signal from dissipative hidden sector dark matter
title_short Diurnal modulation signal from dissipative hidden sector dark matter
title_full Diurnal modulation signal from dissipative hidden sector dark matter
title_fullStr Diurnal modulation signal from dissipative hidden sector dark matter
title_full_unstemmed Diurnal modulation signal from dissipative hidden sector dark matter
title_sort diurnal modulation signal from dissipative hidden sector dark matter
publisher Elsevier
series Physics Letters B
issn 0370-2693
1873-2445
publishDate 2015-09-01
description We consider a simple generic dissipative dark matter model: a hidden sector featuring two dark matter particles charged under an unbroken U(1)′ interaction. Previous work has shown that such a model has the potential to explain dark matter phenomena on both large and small scales. In this framework, the dark matter halo in spiral galaxies features nontrivial dynamics, with the halo energy loss due to dissipative interactions balanced by a heat source. Ordinary supernovae can potentially supply this heat provided kinetic mixing interaction exists with strength ϵ∼10−9. This type of kinetically mixed dark matter can be probed in direct detection experiments. Importantly, this self-interacting dark matter can be captured within the Earth and shield a dark matter detector from the halo wind, giving rise to a diurnal modulation effect. We estimate the size of this effect for detectors located in the Southern hemisphere, and find that the modulation is large (≳10%) for a wide range of parameters.
url http://www.sciencedirect.com/science/article/pii/S0370269315004852
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