NICER neutron stars with dark energy and dark matter: effects on the inferred equation of state
astro-ph.HE, astro-ph.CO, astro-ph.SR, hep-ph, nucl-th
Submitted: 2026-09-13
Updated: 2026-09-13
Comments: 36 pages, 7 figures. Constructive feedback/comments are welcome
Code: https://github.com/xpsi-group/neost
License: http://creativecommons.org/licenses/by/4.0/
The gist: [Abridged] In this work, we compare neutron stars where dark energy or dark matter are present in the core, contrasting them against purely baryonic stars with the same central energy density.
Terminology
Abstract
[Abridged] In this work, we compare neutron stars where dark energy or dark matter are present in the core, contrasting them against purely baryonic stars with the same central energy density. From this comparison, we find that the dark energy models are more constrained by neutron star observations than the dark matter models, suggesting that neutron stars can place strong constraints on dark energy parameters. We consider four configurations: purely baryonic neutron stars described by a piecewise polytropic (PP) equation of state (EoS), baryonic stars admixed with bosonic or fermionic asymmetric dark matter (ADM) cores, and stars with a dark energy core and baryonic shell, where the dark energy is described by the modified Chaplygin dark fluid (MCDF). Using the masses and radii of PSR J0740 + 6620, PSR J0437 - 4715, and PSR J0030 + 0451, we employ Bayesian inference to investigate how accounting for bosonic/fermionic ADM and MCDF cores affects the inferred neutron star properties. We find that MCDF cores, more than PP and ADM admixed models, substantially broaden neutron star mass-radius and pressure-energy density posterior distributions. Moreover, the MCDF EoS parameters can be tightly constrained. While bosonic and fermionic ADM cores decrease the inferred maximum mass, their posteriors strongly coincide with those of the PP model for ADM mass-fractions F χ at most 5%. These results demonstrate that current mass-radius observations cannot rule out MCDF cores, but they can constrain the MCDF parameter space to narrow regions. ADM admixed neutron stars, however, remain observationally identical to purely baryonic stars for all explored mass-fractions, even with improved mass-radius uncertainties. This suggests that mass-radius measurements alone are insufficient to detect ADM core inside neutron stars and that independent astrophysical or particle physics probes will be required.
Sources
- Neutron stars with a dark-energy core from the Chaplygin gas
- A NICER View of PSR J0030+0451: Updated Constraints from Six Years of NICER Observations
- Limits on dark matter existence in neutron stars from recent astrophysical observations and mass correlation analysis
- Properties of non-rotating and rapidly rotating protoneutron stars
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