Tests of General Relativity with GW230529: a neutron star merging with a lower mass-gap compact object
gr-qc, astro-ph.HE
Submitted: 2024-06-05
Updated: 2026-05-13
Comments: 19 pages, 9 figures
Journal ref: Phys. Rev. D 113, 084070 (2026)
DOI: 10.1103/r43k-51yq
License: http://creativecommons.org/licenses/by/4.0/
The gist: On May 29, 2023, the LIGO Livingston observatory detected the gravitational-wave signal GW230529 181500 from the merger of a neutron star with a lower mass-gap compact object.
Terminology
Abstract
On May 29, 2023, the LIGO Livingston observatory detected the gravitational-wave signal GW230529 181500 from the merger of a neutron star with a lower mass-gap compact object. Its long inspiral signal provides a unique opportunity to test general relativity (GR) in a parameter space previously unexplored by strong-field tests. In this work, we performed parameterized inspiral tests of GR with GW230529 181500. Specifically, we search for deviations in the frequency-domain GW phase by allowing for agnostic corrections to the post-Newtonian coefficients. We performed tests with the Flexible Theory Independent and Test Infrastructure For General Relativity frameworks using several quasicircular waveform models that capture different physical effects (higher modes, spins, tides). We find that the signal is consistent with GR for all deviation parameters. Assuming the primary object is a black hole, we obtain particularly tight constraints on the dipole radiation at-1 PN order of δ φ-2 8 times 10-5, which is a factor about17 times more stringent than previous bounds from the neutron star--black hole merger GW200115 042309, as well as on the 0.5PN and 1PN deviation parameters. We discuss some challenges that arise when analyzing this signal, namely biases due to correlations with tidal effects and the degeneracy between the 0PN deviation parameter and the chirp mass. To illustrate the importance of GW230529 181500 for tests of GR, we mapped the agnostic-1 PN results to a class of Einstein-scalar-Gauss-Bonnet (ESGB) theories of gravity. We also conducted an analysis probing the specific phase deviation expected in ESGB theory and obtain an upper bound on the Gauss-Bonnet coupling of GB 0.51 (sqrt α GB 0.28 km), which is better than any previously reported constraint.
Sources
- Observation of Gravitational Waves from the Coalescence of a 2.5-4.5 M Compact Object and a Neutron Star
- Prospects for Observing and Localizing Gravitational-Wave Transients with Advanced LIGO, Advanced Virgo and KAGRA
- Advanced LIGO
- Does Matter Matter? Using the mass distribution to distinguish neutron stars and black holes
- Bridging the Gap: Categorizing Gravitational-Wave Events at the Transition Between Neutron Stars and Black Holes
- GW190814: Gravitational Waves from the Coalescence of a 23 M$_\odot$ Black Hole with a 2.6 M$_\odot$ Compact Object
- The population of merging compact binaries inferred using gravitational waves through GWTC-3
- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- Discovery of a Candidate Black Hole - Giant Star Binary System in the Galactic Field
- A Unicorn in Monoceros: the $3M_\odot$ dark companion to the bright, nearby red giant V723 Mon is a non-interacting, mass-gap black hole candidate
- A pulsar in a binary with a compact object in the mass gap between neutron stars and black holes
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- GW190425: Observation of a Compact Binary Coalescence with Total Mass $\sim 3.4 M_{\odot}$
- The Maximum Mass of a Neutron Star
- Using gravitational-wave observations and quasi-universal relations to constrain the maximum mass of neutron stars
- The Mass Distribution of Stellar Black Holes
- The Mass Distribution of Stellar-Mass Black Holes
- The Black Hole Mass Distribution in the Galaxy
- Gravitational Vacuum Condensate Stars
- Dynamical Boson Stars
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