Atom Interferometer Tests of Dark Matter

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Du, Yufeng, Murgui, Clara, Pardo, Kris, Wang, Yikun, Zurek, Kathryn M.
Format: Preprint
Published: 2022
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914938906214400
author Du, Yufeng
Murgui, Clara
Pardo, Kris
Wang, Yikun
Zurek, Kathryn M.
author_facet Du, Yufeng
Murgui, Clara
Pardo, Kris
Wang, Yikun
Zurek, Kathryn M.
contents Direct detection experiments for dark matter are increasingly ruling out large parameter spaces. However, light dark matter models with particle masses $<$ GeV are still largely unconstrained. Here we examine a proposal to use atom interferometers to detect a light dark matter subcomponent at sub-GeV masses. We describe the decoherence and phase shifts caused by dark matter scattering off of one "arm" of an atom interferometer using a generalized dark matter direct detection framework. This allows us to consider multiple channels: nuclear recoils, hidden photon processes, and axion interactions. We apply this framework to several proposed atom interferometer experiments. Because atom interferometers are sensitive to extremely low momentum deposition and their coherent atoms may give them a boost in sensitivity, these experiments will be highly competitive and complementary to other direct detection methods. In particular, atom interferometers are uniquely able to probe a dark matter sub-component with $m_χ\lesssim 10~\rm{keV}$. We find that, for a mediator mass $m_ϕ=10^{-5}m_χ$, future atom interferometers could close a gap in the existing constraints on nuclear recoils down to $\barσ_n \sim 10^{-42}~\rm{cm}^2$ for $m_χ\sim 10^{-5} - 10^{-1}~\rm{MeV}$ dark matter masses.
format Preprint
id arxiv_https___arxiv_org_abs_2205_13546
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Atom Interferometer Tests of Dark Matter
Du, Yufeng
Murgui, Clara
Pardo, Kris
Wang, Yikun
Zurek, Kathryn M.
High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
Quantum Physics
Direct detection experiments for dark matter are increasingly ruling out large parameter spaces. However, light dark matter models with particle masses $<$ GeV are still largely unconstrained. Here we examine a proposal to use atom interferometers to detect a light dark matter subcomponent at sub-GeV masses. We describe the decoherence and phase shifts caused by dark matter scattering off of one "arm" of an atom interferometer using a generalized dark matter direct detection framework. This allows us to consider multiple channels: nuclear recoils, hidden photon processes, and axion interactions. We apply this framework to several proposed atom interferometer experiments. Because atom interferometers are sensitive to extremely low momentum deposition and their coherent atoms may give them a boost in sensitivity, these experiments will be highly competitive and complementary to other direct detection methods. In particular, atom interferometers are uniquely able to probe a dark matter sub-component with $m_χ\lesssim 10~\rm{keV}$. We find that, for a mediator mass $m_ϕ=10^{-5}m_χ$, future atom interferometers could close a gap in the existing constraints on nuclear recoils down to $\barσ_n \sim 10^{-42}~\rm{cm}^2$ for $m_χ\sim 10^{-5} - 10^{-1}~\rm{MeV}$ dark matter masses.
title Atom Interferometer Tests of Dark Matter
topic High Energy Physics - Phenomenology
Cosmology and Nongalactic Astrophysics
Quantum Physics
url https://arxiv.org/abs/2205.13546