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Conversion-driven freeze-out: Dark matter genesis beyond the WIMP paradigm
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abstract
We consider dark matter (DM) with very weak couplings to the standard model (SM), such that its self-annihilation cross section is much smaller than the canonical one, $\langle\sigma v\rangle_{\chi\chi} \ll 10^{-26}\mathrm{cm}^3/\mathrm{s}$. In this case DM self-annihilation is negligible for the dynamics of freeze-out and DM dilution is solely driven by efficient annihilation of heavier accompanying dark sector particles provided that DM maintains chemical equilibrium with the dark sector. This chemical equilibrium is established by conversion processes which require much smaller couplings to be efficient than annihilation. The chemical decoupling of DM from the SM can either be initiated by the freeze-out of annihilation, resembling a co-annihilation scenario, or of conversion processes, leading to the scenario of conversion-driven freeze-out. We focus on the latter and discuss its distinct phenomenology.
Forward citations
Cited by 2 Pith papers
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Phases of Dark Matter from Inverse Decays
Dark matter produced by the freeze-out of inverse decays has a full phase structure, with couplings as small as m_chi over the Planck mass, that is robust to kinetic decoupling and testable through dark photon searches.
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Exchange driven freeze out of dark matter
Dark matter relic density can be set by an exchange process inside the dark sector, demonstrated in simple scalar Higgs portal models.
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