Gravitational Imprints of Dark Energy in Neutron Stars
gr-qc, astro-ph.HE, nucl-th
Submitted: 2026-09-22
Updated: 2026-09-22
Comments: 13 pages, 11 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: We investigate, for the first time, the non-radial f-mode oscillations of neutron stars (NSs) with a dark energy (DE) core utilising a fully general relativistic treatment.
Terminology
Abstract
We investigate, for the first time, the non-radial f-mode oscillations of neutron stars (NSs) with a dark energy (DE) core utilising a fully general relativistic treatment. We construct the stellar profile by considering a relativistic mean field model for nuclear matter and a modified Chaplygin fluid like prescription for DE. We compute the stellar structure, f-mode oscillations, tidal deformability, and gravitational wave (GW) energy and strain of the NS with DE core by varying the DE equation of state (EoS) parameters. Our study reveals that the inclusion of DE softens EoS and reduces the maximum mass compared to the pure neutron star. The obtained mass-radius values are consistent with observational constraints from massive pulsars such as PSR J0030+0451 and PSR J0740+6620. We find that the extent of the DE core, determined by the transition density, plays a crucial role in modifying the stellar structure and oscillation properties, with lower transition densities producing appreciable changes over a wider mass range. The f-mode frequencies and damping times exhibit systematic modifications, for higher mass configurations, while the correlation between the f-mode frequency and tidal deformability remains consistent with observational constraints from GW170817 and GW190814. Further, the normalised oscillation energy distribution remains nearly universal, with only minimal deviations for the higher mass configurations. Finally, we estimate the characteristic GW strain associated with the f-mode oscillations and find that the predicted signals lie within the sensitivity band of future third generation GW detectors.
Sources
- Feasibility of dark matter admixed neutron star based on recent observational constraints
- Non-radial oscillations in anisotropic dark energy stars
- Fundamental Oscillation Modes in Neutron Stars with Hyperons and Delta Baryons
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- GW170817: Measurements of Neutron Star Radii and Equation of State
- Effects of dark boson mediated feeble interaction between dark matter (DM) and quark matter on $f$-mode oscillation of DM admixed quark stars
- GW190814: Gravitational Waves from the Coalescence of a 23 M$_\odot$ Black Hole with a 2.6 M$_\odot$ Compact Object
- Asteroseismology and Universal Relations in Neutron Stars with Gravitationally Bound Dark Matter
- A gravitational-wave perspective on neutron-star seismology
- Gravitational Wave asteroseismology revisited
- Prospects for Neutron Star Parameter Estimation using Gravitational Waves from f-modes Associated with Magnetar Flares
- $f$-mode oscillations of protoneutron stars
- Density Discontinuity of a Neutron Star and Gravitational Waves
- Normal oscillation modes and radial stability of neutron stars with a dark-energy core from the Chaplygin gas
- Impact of the equation of state on $f$- and $p$- mode oscillations of neutron stars
- Dark energy effects on realistic neutron stars
- Dark Energy Stars
- Bosonic Dark Matter in Neutron Stars and its Effect on Gravitational Wave Signal
- An alternative to quintessence
- Impacts of dark matter on the $f$-mode oscillation of hyperon star
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