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Thermal and non-thermal emission from supermassive black hole circumbinary disks: Disks, Coronae, Streams, and Cavities

Published 2 Sep 2026 in astro-ph.HE | (2609.03140v1)

Abstract: The search for electromagnetic signals from supermassive black hole (SMBH) binary systems is one of the cornerstones of multi-messenger astrophysics, complementing gravitational wave observations of such systems by pulsar timing arrays and LISA. Although extensive simulations have been run to understand the time variability of the bolometric luminosity from accreting binary SMBH systems, comparatively few spectral predictions have been made, and none that go beyond simple emission models. In this paper, we post-process a \texttt{HARM3D} simulation snapshot of a binary at $20 M$ separation accreting at 0.01 Eddington. For black hole masses $106$, $107$, and 10<sup>8</sup>M10<sup>8\,</sup> M_\odot, we self-consistently solve for the radiated spectrum on the basis of time-steady radiation transfer, thermal balance, and ionization equilibrium, including all relevant relativistic effects as well as emission and absorption processes. Although most of the bolometric luminosity is radiated thermally by the disk, the low density regions evacuated by the binary's quadrupole moment produce copious X-rays, with 40%\sim40\% of the observed luminosity in a soft X-ray power law (Γ=2.3Γ= 2.3). We identify two modes of observed azimuthal variation. The X-ray continuum varies by 10%\sim10\% due to an underlying asymmetry in the gas temperature of spiral shocks in the disk. The Fe~Kαα equivalent width dips by 25%\sim25\% when the line of sight to the inner disk is partially obscured by the lump. These two effects share the same period and are π/2\sim π/2 out of phase; the period is order days to weeks for typical AGN masses and a 20MM separation.

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