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Dark Matter and Baryogenesis from Visible-Sector Long-Lived Particles

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arxiv 2212.11303 v2 pith:CNXILUHL submitted 2022-12-21 hep-ph astro-ph.COhep-th

classification hep-phastro-ph.COhep-th
keywords matterdarklong-livedmodeluniversebaryogenesisdecaysfermion
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

We present a minimal extension of the standard model that includes a long-lived fermion with weak-scale mass and an ${\cal O}({\rm GeV})$ fermionic dark matter candidate both of which are coupled to quarks. Decays of a TeV-scale colored scalar in a radiation-dominated phase bring the former to a thermal abundance while also producing dark matter. The long-lived fermion then dominates the energy density of the Universe and drives a period of early matter domination. It decays to reheat the Universe, mainly through baryon-number-violating interactions that also generate a baryon asymmetry, with a small branching fraction to dark matter. We find the allowed parameter space of the model and show that it can be probed by proposed long-lived particle searches as well as next-generation neutron-antineutron oscillation experiments. This model provides a robust explanation of dark matter and baryogenesis as long as the Universe is in a radiation-dominated phase at $T \gtrsim {\cal O}({\rm TeV})$.

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