English

Cosmic Calipers: Precise and Accurate Neutron Star Radius Measurements with Next-Generation Gravitational Wave Detectors

High Energy Astrophysical Phenomena 2025-02-06 v1 General Relativity and Quantum Cosmology

Abstract

Gravitational waves from merging binary neutron stars carry characteristic information about their astrophysical properties, including masses and tidal deformabilities, that are needed to infer their radii. In this study, we use Bayesian inference to quantify the precision with which radius can inferred with upgrades in the current gravitational wave detectors and next-generation observatories such as the Einstein Telescope and Cosmic Explorer. We assign evidences for a set of plausible equations of state, which are then used as weights to obtain radius posteriors. We find that prior choices and the loudness of observed signals limit the precision and accuracy of inferred radii by current detectors. In contrast, next-generation observatories can resolve the radius precisely and accurately, across most of the mass range to within 5%\lesssim 5\% for both soft and stiff equations of state. We also explore how the choice of the neutron star mass prior can influence the inferred masses and potentially affect radii measurements, finding that choosing an astrophysically motivated prior does not notably impact an individual neutron star's radius measurements.

Keywords

Cite

@article{arxiv.2502.03463,
  title  = {Cosmic Calipers: Precise and Accurate Neutron Star Radius Measurements with Next-Generation Gravitational Wave Detectors},
  author = {Sanika Khadkikar and Ish Gupta and Rahul Kashyap and Koustav Chandra and Rossella Gamba and Bangalore Sathyaprakash},
  journal= {arXiv preprint arXiv:2502.03463},
  year   = {2025}
}

Comments

15 pages, 8 figures