Investigating the impact of quasi-universal relations on neutron star constraints in third-generation detectors
gr-qc, astro-ph.HE
Submitted: 2026-02-16
Updated: 2026-02-16
Comments: 22 pages, 14 figures
Journal ref: Phys. Rev. D 114, 024063 (2026)
DOI: 10.1103/c862-2dvz
License: http://creativecommons.org/licenses/by/4.0/
The gist: Gravitational-wave observations of binary neutron star systems can shed light on the currently unknown dense matter equation of state.
Terminology
Abstract
Gravitational-wave observations of binary neutron star systems can shed light on the currently unknown dense matter equation of state. The equation of state determines a large number of neutron star properties, such as tidal deformability, radius, and quadrupole moment, several of which directly affect the emitted gravitational-wave signals. To reduce the dimensionality when computing gravitational-waves and when interpreting observational data, quasi-universal relations are commonly employed to connect different neutron star properties. However, quasi-universal relations are not exact and their use may introduce uncertainty and bias. We explore the potential biases arising from different quasi-universal relations in the third generation era: (i) the Love-Q relation connecting the spin-induced quadrupole moment and the tidal deformability, (ii) the relation between the fundamental mode frequency and the tidal deformability, and (iii) the binary Love relation. We find that for the quadrupole relation biases are only present for rapidly rotating systems, for the binary-Love relation induces moderate biases only in the next-to-leading-order tidal parameters, which can however propagate into the inferred equation of state at low masses. Regarding fundamental mode frequencies, we find that the employed relation introduces only negligible biases, while waveform systematic effects can become comparatively large. Our results highlight that while quasi-universal relations remain a useful tool within gravitational-wave analyses, careful treatment is needed to avoid biases in equation of state measurements with next-generation detectors.
Sources
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- Multi-messenger Observations of a Binary Neutron Star Merger
- Advanced LIGO
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- GW170817: Measurements of Neutron Star Radii and Equation of State
- Properties of the binary neutron star merger GW170817
- Tidal Deformabilities and Radii of Neutron Stars from the Observation of GW170817
- Tidal deformability from GW170817 as a direct probe of the neutron star radius
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Tidal Love numbers of neutron stars
- Quasi-Normal Modes of Stars and Black Holes
- Quadrupole moments of rotating neutron stars
- Effective-one-body multipolar waveform for tidally interacting binary neutron stars up to merger
- Relativistic tidal properties of neutron stars
- Costs of Bayesian Parameter Estimation in Third-Generation Gravitational Wave Detectors: an Assessment of Current Acceleration Methods
- I-Love-Q
- Why I-Love-Q
- Unveiling the universality of I-Love-Q relations
- Assessment of universal relations among second-order moments of relativistic stars via reformulated perturbation equations
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