Modelling the AGN broad-line region using single-epoch spectra − II. Nearby AGNs

Author:

Raimundo S I1ORCID,Vestergaard M12,Goad M R3,Grier C J2,Williams P R4ORCID,Peterson B M567,Treu T4

Affiliation:

1. DARK, Niels Bohr Institute, University of Copenhagen, Lyngbyvej 2, DK-2100 Copenhagen, Denmark

2. Steward Observatory, University of Arizona, 933 N. Cherry Avenue, Tucson, AZ 85721, USA

3. Department of Physics and Astronomy, University of Leicester, University Road, Leicester LE1 7RH, UK

4. Department of Physics and Astronomy, University of California, Los Angeles, CA 90095, USA

5. Department of Astronomy, The Ohio State University, 140 West 18th Avenue, Columbus, OH 43210, USA

6. Center for Cosmology and AstroParticle Physics, The Ohio State University, 191 West Woodruff Avenue, Columbus, OH 43210, USA

7. Space Telescope Science Institute, 3700 San Martin Drive, Baltimore, MD 21218, USA

Abstract

ABSTRACT The structure of the broad-line region (BLR) is an essential ingredient in the determination of active galactic nucleus (AGN) virial black hole masses, which in turn are important to study the role of black holes in galaxy evolution. Constraints on the BLR geometry and dynamics can be obtained from velocity-resolved studies using reverberation mapping data (i.e. monitoring data). However, monitoring data are observationally expensive and only available for a limited sample of AGNs, mostly confined to the local Universe. Here, we explore a new version of a Bayesian inference, physical model of the BLR that uses an individual spectrum and prior information on the BLR size from the radius–luminosity relation, to model the AGN BLR geometry and dynamics. We apply our model to a sample of 11 AGNs, which have been previously modelled using monitoring data. Our single-epoch BLR model is able to constrain some of the BLR parameters with inferred parameter values that agree within the uncertainties with those determined from the modelling of monitoring data. We find that our model is able to derive stronger constraints on the BLR for AGNs with broad emission lines that qualitatively have more substructure and more asymmetry, presumably as they contain more information to constrain the physical model. The performance of this model makes it a practical and cost-effective tool to determine some of the BLR properties of a large sample of low- and high-redshift AGNs, for which monitoring data are not available.

Funder

Independent Research Fund Denmark

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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