Extreme Variability Reveals How the Eddington Ratio Regulates Coronal Power in Active Galactic Nuclei
arXiv:2607.19485
Abstract
The bolometric luminosity () of active galactic nuclei (AGNs) is a key tracer of accretion physics, but its direct determination is often hindered by limited spectral coverage and contamination of the host galaxy. Bolometric corrections () offer a practical means of estimating , with the X-ray bolometric correction () being crucial for exploring the coupling between the accretion disk and the X-ray corona. Here we present multi-epoch, multi-wavelength observations of five highly variable, changing-state AGNs that span more than three orders of magnitude in Eddington ratio (). This unique data set reveals a remarkably tight relation between and , with an intrinsic scatter of only dex. We find that while the sources show bolometric corrections following different tracks in luminosity space that depend on black hole mass, they all display the same trend. This shows unambiguously that is the primary driver of X-ray bolometric corrections, and points to a tight underlying trend that can be used to obtain reliable estimates of bolometric output from X-ray luminosities. Our results highlight how time-domain, multi-wavelength observations of variable AGN offer unique insights into the accretion flow structure and its radiative output.
4 figures, accepted for publication in ApJ Letter. Comments are welcome