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Quasar Microlensing Variability Studies Favor Shallow Accretion Disk Temperature Profiles

High Energy Astrophysical Phenomena 2020-06-15 v1 Astrophysics of Galaxies

Abstract

We compare the microlensing-based continuum emission region size measurements in a sample of 15 gravitationally lensed quasars with estimates of luminosity-based thin disk sizes to constrain the temperature profile of the quasar continuum accretion region. If we adopt the standard thin disk model, we find a significant discrepancy between sizes estimated using the luminosity and those measured by microlensing of log(rL/rμ)=0.57±0.08dex\log(r_{L}/r_{\mu})=-0.57\pm0.08\,\text{dex}. If quasar continuum sources are simple, optically thick accretion disks with a generalized temperature profile T(r)rβT(r) \propto r^{-\beta}, the discrepancy between the microlensing measurements and the luminosity-based size estimates can be resolved by a temperature profile slope 0.37<β<0.560.37 < \beta < 0.56 at 1σ1\,\sigma confidence. This is shallower than the standard thin disk model (β=0.75\beta=0.75) at 3σ3\,\sigma significance. We consider alternate accretion disk models that could produce such a temperature profile and reproduce the empirical continuum size scaling with black hole mass, including disk winds or disks with non-blackbody atmospheres.

Keywords

Cite

@article{arxiv.2006.07243,
  title  = {Quasar Microlensing Variability Studies Favor Shallow Accretion Disk Temperature Profiles},
  author = {Matthew A. Cornachione and Christopher W. Morgan},
  journal= {arXiv preprint arXiv:2006.07243},
  year   = {2020}
}

Comments

11 pages, 5 figures

R2 v1 2026-06-23T16:16:46.702Z