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October 12, 2025Physical review. D/Physical review. D.4 citationsOpen Access

Spin-dependent scattering of sub-GeV dark matter: Models and constraints

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SGStefania GoriSKSimon KnapenTLTongyan Lin

Key Points

  • Dark matter with mass below 100 MeV predominantly scatters through incoherent phonon production, suggesting a unique interaction mechanism.
  • The analysis calculates bounds on the cross section for dark matter interactions, drawing from diverse experimental constraints including stellar cooling.
  • This work models the sensitivity of future direct detection experiments, particularly emphasizing interactions mediated by spin-0 or spin-1 particles.
  • Existing constraints on dark matter models are stringent, yet potential parameter space may still be accessible for masses greater than 100 MeV.

Abstract

We calculate the scattering rate of sub-GeV dark matter in solid-state targets for spin-dependent dark matter–nucleon interactions. For dark matter particles with mass below 100 MeV, the scattering occurs predominantly through incoherent phonon production. For dark matter heavier than 100 MeV, we match onto the nuclear recoil calculation. To compare the sensitivity of future direct detection experiments with existing constraints, we consider three models with interactions that are mediated by spin-0 or spin-1 particles. This allows us to derive bounds on the cross section from searches for the mediating particle, including bounds from stellar cooling, beam dump experiments, meson factories, and dark matter self-interactions. The existing bounds are very stringent, though for mχ≳100 MeV there is parameter space, which may be accessible with direct detection, depending on the exposure and background rates.

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Cite This Study

Gori et al. (2025) studied this question.

synapsesocial.com/papers/68ebe3d6becc64ad52fdad19https://doi.org/10.1103/1r9r-n4sv
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