TY - JOUR
T1 - A physical model of the broad-band continuum of AGN and its implications for the UV/X relation and optical variability
AU - Kubota, Aya
AU - Done, Chris
N1 - Funding Information:
We thank M. Mehdipour for providing us SEDs in Mehdipour et al. (2011, 2015) and helpful comments on the data. We are also grateful to C. Macleod and E. Lusso for providing us the data points in MacLeod et al. (2010) and Lusso & Risaliti (2017), and useful discussions and comments. Special thanks to H. Noda and C. Jin for helpful discussions. AK is supported by research programme in foreign country by Shibaura Institute of Technology. CD acknowledges support from STFC (ST/P000541/1), and useful conversations with O. Blaes and J.M. Hameury. We also thank P.O. Petrucci as our referee for valuable comments.
Publisher Copyright:
© 2018 The Author(s).
PY - 2018
Y1 - 2018
N2 - We develop a new spectral model for the broad-band spectral energy distribution (SED) of active galactic nuclei (AGN). This includes an outer standard disc, an inner warm Comptonizing region to produce the soft X-ray excess and a hot corona. We tie these together energetically by assuming Novikov-Thorne emissivity, and use this to define a size scale for the hard X-ray corona as equal to the radius where the remaining accretion energy down to the black hole can power the observed X-ray emission. We test this on three AGN with well-defined SEDs as well as on larger samples to show that the average hard X-ray luminosity is always approximately a few per cent of the Eddington luminosity across a large range of Eddington ratio. As a consequence, the radial size scale required for gravity to power the X-ray corona has to decrease with increasing Eddington fraction. For the first time, we hardwire this into the spectral models, and set the hard X-ray spectral index self-consistently from the ratio of the hard X-ray luminosity to intercepted seed photon luminosity from the disc. This matches the observed correlation of steeper spectral index with increasing Eddington ratio, as well as reproducing the observed tight UV/X relation of quasars. We also include the reprocessed emission produced by the hot inner flow illuminating the warm Comptonization and standard disc regions and show that this predicts a decreasing amount of optical variability with increasing Eddington ratio as observed, though additional processes may also be required to explain the observed optical variability.
AB - We develop a new spectral model for the broad-band spectral energy distribution (SED) of active galactic nuclei (AGN). This includes an outer standard disc, an inner warm Comptonizing region to produce the soft X-ray excess and a hot corona. We tie these together energetically by assuming Novikov-Thorne emissivity, and use this to define a size scale for the hard X-ray corona as equal to the radius where the remaining accretion energy down to the black hole can power the observed X-ray emission. We test this on three AGN with well-defined SEDs as well as on larger samples to show that the average hard X-ray luminosity is always approximately a few per cent of the Eddington luminosity across a large range of Eddington ratio. As a consequence, the radial size scale required for gravity to power the X-ray corona has to decrease with increasing Eddington fraction. For the first time, we hardwire this into the spectral models, and set the hard X-ray spectral index self-consistently from the ratio of the hard X-ray luminosity to intercepted seed photon luminosity from the disc. This matches the observed correlation of steeper spectral index with increasing Eddington ratio, as well as reproducing the observed tight UV/X relation of quasars. We also include the reprocessed emission produced by the hot inner flow illuminating the warm Comptonization and standard disc regions and show that this predicts a decreasing amount of optical variability with increasing Eddington ratio as observed, though additional processes may also be required to explain the observed optical variability.
KW - Accretion
KW - Accretion discs
KW - Black hole physics
KW - Galaxies: Seyfert
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U2 - 10.1093/MNRAS/STY1890
DO - 10.1093/MNRAS/STY1890
M3 - Article
AN - SCOPUS:85053117114
SN - 0035-8711
VL - 480
SP - 1247
EP - 1262
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
IS - 1
ER -