X-ray Reflection as Diagnostic of Supermassive Black Hole Binary Properties

arXiv:2608.04961 · astro-ph.HE · Submitted 2026-08-05 · Read on arXiv

Julie Malewicz, Tamara Bogdanović, David R. Ballantyne, Laura Brenneman, Thomas Dauser

astro-ph.HE

Submitted: 2026-08-05

Comments: 19 pages, 9 figures. Submitted to ApJ. Comments are welcome!

License: http://creativecommons.org/licenses/by/4.0/

The gist: We investigate correlations between prominent features in the relativistic X-ray reflection spectrum emitted by an accreting supermassive black hole (SMBH) binary with the underlying properties of

Terminology

Abstract

We investigate correlations between prominent features in the relativistic X-ray reflection spectrum emitted by an accreting supermassive black hole (SMBH) binary with the underlying properties of the binary system. Model-independent measurements of the relativistic Fe K alpha line (about 6.4 keV) and the Compton reflection hump (about 20-30 keV) are shown to be useful in constraining binary parameters. We compute 24,570 X-ray reflection spectra from two mini-disks attached to SMBHs at a fixed separation of 100 GM/c squared on circular orbits, by varying its mass ratio, spin parameters, inclination, orbital phase and total mass accretion rate. We find that the location of the blue peak in the relativistic Fe K alpha is a relatively robust diagnostic of the binary inclination, which could be obtained from a single-epoch X-ray spectrum. Given a few epochs of spectra, one may be able to determine the orbital phase of the binary and place constraints on its mass ratio by monitoring the Fe K alpha centroid. Of all parameters, SMBH spin efects are most subtle and prone to measurement degeneracies. Some markers of high SMBH spin may nevertheless surface in the composite spectrum due to increased radiative efficiency. The approach developed here can be used to place preliminary constraints on binary parameters before a full parametrized X-ray spectral fitting method is available. It complements gravitational wave measurements by the Pulsar Timing Arrays (PTAs) and the Laser Interferometer Space Antenna by providing independent constraints on binary parameters that may be prone to degeneracy (inclination), or otherwise inaccessible (spin for PTAs).

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