Dynamical tidal response of neutron stars as a probe of dense-matter properties

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Main Authors: R., Abhishek Hegade K., Yang, Yumu, Hippert, Mauricio, Noronha-Hostler, Jacquelyn, Noronha, Jorge, Yunes, Nicolás
Format: Preprint
Published: 2026
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author R., Abhishek Hegade K.
Yang, Yumu
Hippert, Mauricio
Noronha-Hostler, Jacquelyn
Noronha, Jorge
Yunes, Nicolás
author_facet R., Abhishek Hegade K.
Yang, Yumu
Hippert, Mauricio
Noronha-Hostler, Jacquelyn
Noronha, Jorge
Yunes, Nicolás
contents Dynamical tidal deformations play a crucial role in the gravitational waves emitted by binary neutron star systems during their late inspiral. In this work, we systematically explore how relativistic (dynamical and dissipative) tidal deformations depend on the internal structure of a neutron star using two analytic classes of equations of state. The first class is a nucleonic model that is parameterized by nuclear physics observables, such as the symmetry energy coefficients and saturation properties. The second class is a toy model of quark matter, the MIT bag model. To model tidal dissipation, we self-consistently include contributions from weak-interaction-driven bulk-viscous effects while considering both the nucleonic and the quark-matter equations of state. The dissipative tide is sensitive to frequency and temperature, but its magnitude, as predicted by weak-interaction-driven bulk-viscous effects, is too small (within the equation-of-state models studied here) to be detectable by current or future observations. However, we find that the (conservative) dynamical tidal response function depends strongly on the slope of the symmetry energy and on higher-order coefficients of the symmetry energy; this implies that gravitational-wave observations could be used to probe higher-order coefficients of the symmetry energy through their effect on the (conservative) dynamical tide.
format Preprint
id arxiv_https___arxiv_org_abs_2603_26886
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Dynamical tidal response of neutron stars as a probe of dense-matter properties
R., Abhishek Hegade K.
Yang, Yumu
Hippert, Mauricio
Noronha-Hostler, Jacquelyn
Noronha, Jorge
Yunes, Nicolás
General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
Nuclear Theory
Dynamical tidal deformations play a crucial role in the gravitational waves emitted by binary neutron star systems during their late inspiral. In this work, we systematically explore how relativistic (dynamical and dissipative) tidal deformations depend on the internal structure of a neutron star using two analytic classes of equations of state. The first class is a nucleonic model that is parameterized by nuclear physics observables, such as the symmetry energy coefficients and saturation properties. The second class is a toy model of quark matter, the MIT bag model. To model tidal dissipation, we self-consistently include contributions from weak-interaction-driven bulk-viscous effects while considering both the nucleonic and the quark-matter equations of state. The dissipative tide is sensitive to frequency and temperature, but its magnitude, as predicted by weak-interaction-driven bulk-viscous effects, is too small (within the equation-of-state models studied here) to be detectable by current or future observations. However, we find that the (conservative) dynamical tidal response function depends strongly on the slope of the symmetry energy and on higher-order coefficients of the symmetry energy; this implies that gravitational-wave observations could be used to probe higher-order coefficients of the symmetry energy through their effect on the (conservative) dynamical tide.
title Dynamical tidal response of neutron stars as a probe of dense-matter properties
topic General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
Nuclear Theory
url https://arxiv.org/abs/2603.26886