Neutron-star seismology with realistic, finite-temperature nuclear matter

Fuente: arXiv
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Main Authors: Gittins, Fabian, Andersson, Nils
Format: Preprint
Published: 2024
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author Gittins, Fabian
Andersson, Nils
author_facet Gittins, Fabian
Andersson, Nils
contents The oscillation spectrum of a neutron star is notably rich and intrinsically dependent on the equation of state of nuclear matter. With recent advancements in gravitational-wave and electromagnetic astronomy, we are nearing the capability to perform neutron-star asteroseismology and probe the complex physics of neutron stars. With this in mind, we explore the implementation of three-parameter finite-temperature matter models in the computation of neutron-star oscillations. We consider in detail the thermodynamics of nuclear matter and show how this information enters the problem. Our realistic treatment takes into account entropy and composition gradients that exist in the nuclear matter, giving rise to buoyant g-mode oscillations. To illustrate the implementation, we determine the oscillation spectrum of a low-temperature neutron star. In addition to the expected compositional and thermal g-modes, we find perturbations sourced by phase transitions in the equation of state. We also examine two thermal models, comparing the results for constant redshifted temperature with those for uniform entropy per baryon.
format Preprint
id arxiv_https___arxiv_org_abs_2406_05177
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Neutron-star seismology with realistic, finite-temperature nuclear matter
Gittins, Fabian
Andersson, Nils
General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
Nuclear Theory
The oscillation spectrum of a neutron star is notably rich and intrinsically dependent on the equation of state of nuclear matter. With recent advancements in gravitational-wave and electromagnetic astronomy, we are nearing the capability to perform neutron-star asteroseismology and probe the complex physics of neutron stars. With this in mind, we explore the implementation of three-parameter finite-temperature matter models in the computation of neutron-star oscillations. We consider in detail the thermodynamics of nuclear matter and show how this information enters the problem. Our realistic treatment takes into account entropy and composition gradients that exist in the nuclear matter, giving rise to buoyant g-mode oscillations. To illustrate the implementation, we determine the oscillation spectrum of a low-temperature neutron star. In addition to the expected compositional and thermal g-modes, we find perturbations sourced by phase transitions in the equation of state. We also examine two thermal models, comparing the results for constant redshifted temperature with those for uniform entropy per baryon.
title Neutron-star seismology with realistic, finite-temperature nuclear matter
topic General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
Nuclear Theory
url https://arxiv.org/abs/2406.05177