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Matter-antimatter asymmetry and dark matter stability from baryon number conservation

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arxiv 2307.02592 v3 pith:Q56BAE4E submitted 2023-07-05 hep-ph

Matter-antimatter asymmetry and dark matter stability from baryon number conservation

classification hep-ph
keywords baryonnumberasymmetrydarkuniverseabundanceexistencematter
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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There is currently no evidence for a baryon asymmetry in our Universe. Instead, cosmological observations have only demonstrated the existence of a quark-antiquark asymmetry, which does not necessarily imply a baryon asymmetric Universe, since the baryon number of the dark sector particles is unknown. In this paper we discuss a framework where the total baryon number of the Universe is equal to zero, and where the observed quark-antiquark asymmetry arises from neutron portal interactions with a dark sector fermion $N$ that carries baryon number. In order to render a baryon symmetric universe throughout the whole cosmological history, we introduce a complex scalar $\chi$, with opposite baryon number and with the same initial abundance as $N$. Notably, due to the baryon number conservation, $\chi$ is absolutely stable and could have an abundance today equal to the observed dark matter abundance. Therefore, in this simple framework, the existence of a quark-antiquark asymmetry is intimately related to the existence (and the stability) of dark matter.

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Forward citations

Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Neutron Portal and Dark Matter-Baryon Coincidence: from UV Completion to Phenomenology

    hep-ph 2026-04 unverdicted novelty 6.0

    A UV-complete neutron portal model dynamically solves the dark matter-baryon coincidence via a supercooled dark confinement transition that generates GeV-scale asymmetric DM and links to observed gravitational waves.

  2. Searching for apparent baryon number violation in $\Lambda_c^+$ decays at the Super Tau-Charm Facility

    hep-ph 2026-04 unverdicted novelty 5.0

    STCF with 1 ab^{-1} can probe several-TeV new-physics scales in sterile-neutrino EFT and constrain an RPV SUSY parameter to ~0.1 TeV^{-2} for apparent BNV in unexplored Lambda_c+ channels.