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The neutron decay anomaly, neutron stars and dark matter

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arxiv 2403.08666 v2 pith:6YA73HRK submitted 2024-03-13 astro-ph.CO gr-qchep-ph

classification astro-ph.COgr-qchep-ph
keywords darkneutronmatterdecayscalarstarsabundancealthough
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abstract

The discrepancies in different measurements of the lifetime of isolated neutrons could be resolved by considering an extra neutron decay channel into dark matter, with a branching ratio of the order of $O(1$\%). Although the decay channel into a dark fermion $\chi$ plus visible matter has been already experimentally excluded, a dark decay with either a scalar or dark photon remains still a possibility. In particular, a model with a fermion mass $m_\chi\approx 1$ GeV and a scalar $m_\phi \approx O(\rm{MeV})$ could provide not only the required branching ratio to explain the anomaly but also a good dark matter (DM) candidate with the right thermal abundance today. Although the interaction DM-neutron will affect the formation of neutron stars, the combined effect of the dark matter self-interactions mediated by the light scalar and an effective repulsive interaction with the neutrons induced by the scalar-Higgs coupling would allow heavy enough neutron stars. The combined constraints from neutron lifetime, dark matter abundance, neutron star and Higgs physics, and Big Bang Nucleosynthesis, restrict the light scalar mass to the range $2 m_e < m_\phi < 2 m_e + 0.0375$ MeV.

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

  1. Effect of Dark matter and $\sigma$-cut potential on radial and non-radial oscillation modes in neutron stars

    astro-ph.HE 2025-07 conditional novelty 4.0 of 10

    Dark matter-admixed neutron stars oscillate at higher f- and p1-mode frequencies than ordinary or σ-cut models, while quasi-universal oscillation relations still hold.

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