Constraining the mass of fermionic dark matter from its feeble interaction with hadronic matter via dark mediators in neutron stars

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Guha, Atanu, Sen, Debashree
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909249149337600
author Guha, Atanu
Sen, Debashree
author_facet Guha, Atanu
Sen, Debashree
contents Considering ten well-known relativistic mean field models, we invoke feeble interaction between hadronic matter and fermionic dark matter (DM) $χ$ via new physics scalar ($ϕ$) and vector ($ξ$) mediators in neutron star core, thereby forming DM admixed neutron stars (DMANSs). The chosen masses of the DM fermion ($m_χ$) and the mediators ($m_ϕ$ and $m_ξ$) are consistent with the self-interaction constraint from Bullet cluster while their respective couplings ($y_ϕ$ and $y_ξ$) are also constrained by the present day relic abundance. Assuming that both $ϕ$ and $ξ$ contribute equally to the relic abundance, we compute the equation of state of the DMANSs and consequently their structural properties. We found that for a particular (constant) DM density, the presence of lighter DM results in more massive DMANSs with larger radius. In the light of the various recent constraints like those from the massive pulsar PSR J0740+6620, the gravitational wave (GW170817) data and the results of NICER experiments for PSR J0030+0451 and PSR J0740+6620, we provide a bound on $m_χ$ within the framework of the present work as $m_χ\approx$ (0.1 $-$ 30) GeV for a wide range of fixed DM Fermi momenta $k_F^χ$=(0.01 $-$ 0.07) GeV. In the case of the hadronic models that yield larger radii corresponding to the low mass neutron stars in the no-DM scenario, interaction with comparatively heavier DM fermion is necessary in order to ensure that the DMANSs obtained with such models satisfy the radius constraints from both GW170817 and NICER data for PSR J0030+0451.
format Preprint
id arxiv_https___arxiv_org_abs_2401_14419
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Constraining the mass of fermionic dark matter from its feeble interaction with hadronic matter via dark mediators in neutron stars
Guha, Atanu
Sen, Debashree
High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Nuclear Theory
Considering ten well-known relativistic mean field models, we invoke feeble interaction between hadronic matter and fermionic dark matter (DM) $χ$ via new physics scalar ($ϕ$) and vector ($ξ$) mediators in neutron star core, thereby forming DM admixed neutron stars (DMANSs). The chosen masses of the DM fermion ($m_χ$) and the mediators ($m_ϕ$ and $m_ξ$) are consistent with the self-interaction constraint from Bullet cluster while their respective couplings ($y_ϕ$ and $y_ξ$) are also constrained by the present day relic abundance. Assuming that both $ϕ$ and $ξ$ contribute equally to the relic abundance, we compute the equation of state of the DMANSs and consequently their structural properties. We found that for a particular (constant) DM density, the presence of lighter DM results in more massive DMANSs with larger radius. In the light of the various recent constraints like those from the massive pulsar PSR J0740+6620, the gravitational wave (GW170817) data and the results of NICER experiments for PSR J0030+0451 and PSR J0740+6620, we provide a bound on $m_χ$ within the framework of the present work as $m_χ\approx$ (0.1 $-$ 30) GeV for a wide range of fixed DM Fermi momenta $k_F^χ$=(0.01 $-$ 0.07) GeV. In the case of the hadronic models that yield larger radii corresponding to the low mass neutron stars in the no-DM scenario, interaction with comparatively heavier DM fermion is necessary in order to ensure that the DMANSs obtained with such models satisfy the radius constraints from both GW170817 and NICER data for PSR J0030+0451.
title Constraining the mass of fermionic dark matter from its feeble interaction with hadronic matter via dark mediators in neutron stars
topic High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2401.14419