English

Astrophysical Gravitational-Wave Echoes from Galactic Nuclei

High Energy Astrophysical Phenomena 2022-08-03 v2 General Relativity and Quantum Cosmology

Abstract

Galactic nuclei (GNs) are dense stellar environments abundant in gravitational-wave (GW) sources for LIGO, VIRGO, and KAGRA. The GWs may be generated by stellar-mass black hole (BH) or neutron star mergers following gravitational bremsstrahlung, dynamical scattering encounters, Kozai-Lidov type oscillations driven by the central supermassive black hole (SMBH), or gas-assisted mergers if present. In this paper, we examine a smoking gun signature to identify sources in GNs: the GWs scattered by the central SMBH. This produces a secondary signal, an astrophysical GW echo, which has a very similar time-frequency evolution as the primary signal but arrives after a time delay. We determine the amplitude and time-delay distribution of the GW echo as a function of source distance from the SMBH. Between 10%90%\sim10\%-90\% of the detectable echoes arrive within (1100)M6sec\sim(1-100)M_6\,\mathrm{sec} after the primary GW for sources between 1010410-10^4 Schwarzschild radius, where M6=MSMBH,z/(106M)M_6=M_{\rm SMBH,z}/(10^6\,\mathrm{M}_{\odot}), and MSMBH,zM_{\rm SMBH,z} is the observer-frame SMBH mass. The echo arrival times are systematically longer for high signal-to-noise ratio (SNR) primary GWs, where the GW echo rays are scattered at large deflection angles. In particular, 10%90%\sim10\%-90\% of the distribution is shifted to (51800)M6sec\sim(5-1800)M_6\,\mathrm{sec} for sources, where the lower limit of echo detection is 0.020.02 of the primary signal amplitude. We find that 5%30%\sim5\%-30\% (1%7%\sim1\%-7\%) of GW sources have an echo amplitude larger than 0.20.050.2-0.05 times the amplitude of the primary signal if the source distance from the SMBH is 5050 (200200) Schwarzschild radius. Non-detections can rule out that a GW source is near an SMBH.

Keywords

Cite

@article{arxiv.2110.09540,
  title  = {Astrophysical Gravitational-Wave Echoes from Galactic Nuclei},
  author = {László Gondán and Bence Kocsis},
  journal= {arXiv preprint arXiv:2110.09540},
  year   = {2022}
}

Comments

20 pages, 8 figures, accepted by MNRAS

R2 v1 2026-06-24T06:59:14.946Z