Interactions between dark matter (DM) and relativistic particles at early times suppress structure formation on small scales. In particular, the scattering process transfers heat and momentum from radiation to DM, ultimately reducing the abundance of low-mass DM halos and the dwarf galaxies they host. Herein, we derive limits on DM--photon and DM--neutrino scattering cross section using the Milky Way (MW) satellite galaxy population. We consider temperature-independent interactions parameterized by DM mass (m_χ) and DM--radiation interaction cross section (σχ--i, where i represents the target species). By requiring that the linear matter power spectra are strictly less suppressed than in the case of a thermal-relic warm DM, we derive the following $95%$ upper limits at m_χ=1 MeV: σχ--γ<1.50×10⁻³⁸cm² and σχ--ν<2.41×10⁻³⁸cm². Our bounds on σχ--i depend linearly on m_χ for m_χ 1~MeV and improve upon previous limits by an order of magnitude. The mass dependence of our limit approaches m_χ³ at lower masses due to the effects of DM sound speed; at mχ=100~keV, we arrive at an upper limit over three orders of magnitude more stringent than achieved in previous explorations. Upcoming dwarf galaxy surveys will further improve the sensitivity of similar analyses, complementing laboratory and indirect detection searches for DM--radiation interactions.
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Crumrine et al. (2024) studied this question.
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