Proto-neutron Stars with Dark Matter Admixture: A Single-Fluid Approach

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Hauptverfasser: Issifu, Adamu, Menezes, Débora P., Frederico, Tobias
Format: Preprint
Veröffentlicht: 2025
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author Issifu, Adamu
Menezes, Débora P.
Frederico, Tobias
author_facet Issifu, Adamu
Menezes, Débora P.
Frederico, Tobias
contents This work investigates the impact of dark matter (DM) on the microscopic and macroscopic properties of proto-neutron stars (PNSs). We employ a single-fluid framework in which DM interacts with ordinary matter (OM) via the Higgs portal and remains in thermal equilibrium through non-gravitational interactions. Using a quasi-static approximation, we analyze the evolution of PNSs during the Kelvin-Helmholtz phase by varying the DM mass while keeping the entropy per baryon and lepton fraction fixed. Our results show that DM absorbs thermal energy from the stellar medium without efficient re-emission, thereby altering neutrino emission and affecting the star's thermal evolution history. Furthermore, neutrinos contribute significantly to pressure support in the PNS phase, inhibiting DM mass accretion during neutrino-trapped stages. Based on the requirement to satisfy the observed $2,\rm M_\odot$ neutron star mass constraint and to maintain consistency with supernova remnant data, we suggest an upper limit of $m_χ\leq 0.62,\rm GeV$ for the DM mass that can accrete in evolving PNSs, within the model framework. In contrast, we established that cold neutron stars (NSs) can support higher DM masses without compromising equilibrium stability, owing to increased central density, enhanced gravitational binding energy, and reduced thermal pressure.
format Preprint
id arxiv_https___arxiv_org_abs_2506_21378
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Proto-neutron Stars with Dark Matter Admixture: A Single-Fluid Approach
Issifu, Adamu
Menezes, Débora P.
Frederico, Tobias
High Energy Astrophysical Phenomena
Nuclear Theory
This work investigates the impact of dark matter (DM) on the microscopic and macroscopic properties of proto-neutron stars (PNSs). We employ a single-fluid framework in which DM interacts with ordinary matter (OM) via the Higgs portal and remains in thermal equilibrium through non-gravitational interactions. Using a quasi-static approximation, we analyze the evolution of PNSs during the Kelvin-Helmholtz phase by varying the DM mass while keeping the entropy per baryon and lepton fraction fixed. Our results show that DM absorbs thermal energy from the stellar medium without efficient re-emission, thereby altering neutrino emission and affecting the star's thermal evolution history. Furthermore, neutrinos contribute significantly to pressure support in the PNS phase, inhibiting DM mass accretion during neutrino-trapped stages. Based on the requirement to satisfy the observed $2,\rm M_\odot$ neutron star mass constraint and to maintain consistency with supernova remnant data, we suggest an upper limit of $m_χ\leq 0.62,\rm GeV$ for the DM mass that can accrete in evolving PNSs, within the model framework. In contrast, we established that cold neutron stars (NSs) can support higher DM masses without compromising equilibrium stability, owing to increased central density, enhanced gravitational binding energy, and reduced thermal pressure.
title Proto-neutron Stars with Dark Matter Admixture: A Single-Fluid Approach
topic High Energy Astrophysical Phenomena
Nuclear Theory
url https://arxiv.org/abs/2506.21378