The reverberation signatures of rotating disc winds in active galactic nuclei
S. W. Mangham, C. Knigge, J. H. Matthews, K. S. Long, S. A. Sim, N., Higginbottom

TL;DR
This paper models reverberation signatures of rotating disc winds in AGN, revealing complex velocity-delay maps and cautioning against simple interpretations of observational signatures for inflow, outflow, or rotation.
Contribution
It introduces a detailed Monte Carlo radiative transfer model for AGN disc winds, predicting reverberation signatures and highlighting complexities in interpreting observational data.
Findings
Velocity-delay maps often show negative responses.
Reverberation signatures tend to be rotation dominated.
Traditional outflow signatures are only visible at long delays.
Abstract
The broad emission lines (BELs) in active galactic nuclei (AGN) respond to ionizing continuum variations. The time and velocity dependence of their response depends on the structure of the broad-line region: its geometry, kinematics and ionization state. Here, we predict the reverberation signatures of BELs formed in rotating accretion disc winds. We use a Monte Carlo radiative transfer and ionization code to predict velocity-delay maps for representative high- (C) and low-ionization (H) emission lines in both high- and moderate-luminosity AGN. Self-shielding, multiple scattering and the ionization structure of the outflows are all self-consistently taken into account, while small-scale structure in the outflow is modelled in the micro-clumping approximation. Our main findings are: (1) The velocity-delay maps of smooth/micro-clumped outflows often contain significant…
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