Testing the strong equivalence principle with multimessenger binary neutron star mergers

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Hauptverfasser: Zhu, Jie, Song, Hanlin, Lyu, Zhenwei, Li, Hao, Ji, Peixiang, Wang, Jun-Chen, Yan, Haobo, Ma, Bo-Qiang
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Veröffentlicht: 2026
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author Zhu, Jie
Song, Hanlin
Lyu, Zhenwei
Li, Hao
Ji, Peixiang
Wang, Jun-Chen
Yan, Haobo
Ma, Bo-Qiang
author_facet Zhu, Jie
Song, Hanlin
Lyu, Zhenwei
Li, Hao
Ji, Peixiang
Wang, Jun-Chen
Yan, Haobo
Ma, Bo-Qiang
contents The constancy of the gravitational constant $G$ is a cornerstone of the strong equivalence principle and of general relativity, yet its possible temporal variation remains a key target in tests of fundamental physics. Gravitational-wave (GW) astronomy, especially when combined with electromagnetic observations, provides an unprecedented new opportunity to probe this principle in the strong-field and dynamical regime. In this work, we develop a GW waveform model with a slowly varying gravitational constant, incorporating its effects both on compact binary dynamics and GW propagation in an expanding universe. Applying this framework to the binary neutron star merger GW170817, together with independent electromagnetic constraints on the luminosity distance, sky localization and binary inclination from GRB 170817A, we perform a joint Bayesian analysis that disentangles varying-$G$ effects from astrophysical degeneracies. We find no evidence for a temporal variation of the gravitational constant, and constrain its fractional time derivative to $\dot{G}/G \in [-3.36 \times 10^{-9}, 5.34\times10^{-10}]~{\rm yr^{-1}}$, representing the most stringent bounds obtained to date from real GW observations. Our results demonstrate the power of multi-messenger astronomy as a precision probe of the strong equivalence principle in the relativistic regime.
format Preprint
id arxiv_https___arxiv_org_abs_2603_25413
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Testing the strong equivalence principle with multimessenger binary neutron star mergers
Zhu, Jie
Song, Hanlin
Lyu, Zhenwei
Li, Hao
Ji, Peixiang
Wang, Jun-Chen
Yan, Haobo
Ma, Bo-Qiang
General Relativity and Quantum Cosmology
The constancy of the gravitational constant $G$ is a cornerstone of the strong equivalence principle and of general relativity, yet its possible temporal variation remains a key target in tests of fundamental physics. Gravitational-wave (GW) astronomy, especially when combined with electromagnetic observations, provides an unprecedented new opportunity to probe this principle in the strong-field and dynamical regime. In this work, we develop a GW waveform model with a slowly varying gravitational constant, incorporating its effects both on compact binary dynamics and GW propagation in an expanding universe. Applying this framework to the binary neutron star merger GW170817, together with independent electromagnetic constraints on the luminosity distance, sky localization and binary inclination from GRB 170817A, we perform a joint Bayesian analysis that disentangles varying-$G$ effects from astrophysical degeneracies. We find no evidence for a temporal variation of the gravitational constant, and constrain its fractional time derivative to $\dot{G}/G \in [-3.36 \times 10^{-9}, 5.34\times10^{-10}]~{\rm yr^{-1}}$, representing the most stringent bounds obtained to date from real GW observations. Our results demonstrate the power of multi-messenger astronomy as a precision probe of the strong equivalence principle in the relativistic regime.
title Testing the strong equivalence principle with multimessenger binary neutron star mergers
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2603.25413