Time Dependent Photoionization Modeling of Warm Absorbers in Active Galactic Nuclei
Dev R Sadaula, Manuel A Bautista, Javier A Garcia, Timothy R Kallman

TL;DR
This paper develops time-dependent models for warm absorbers in active galactic nuclei, showing that variability in the ionizing continuum significantly impacts the ionization and temperature states, affecting the interpretation of observational data.
Contribution
It introduces the first models that account for the time variability of the ionizing continuum in warm absorber gas clouds in AGN, challenging the steady-state assumption.
Findings
Time variability significantly affects warm absorber properties.
Time-dependent models differ from equilibrium models.
Inclusion of variability is crucial for accurate outflow property estimates.
Abstract
Warm absorber spectra contain bound-bound and bound-free absorption features seen in the X-ray and UV spectra from many active galactic nuclei (AGN). The widths and centroid energies of these features indicate they occur in outflowing gas, and the outflow can affect the gas within the host galaxy. Thus the warm absorber mass and energy budgets are of great interest. Estimates for these properties depend on models which connect the observed strengths of the absorption features with the density, composition, and ionization state of the absorbing gas. Such models assume that the ionization and heating of the gas come primarily from the strong continuum near the central black hole. They also assume that the various heating, cooling, ionization, and recombination processes are in a time-steady balance. This assumption may not be valid, owing to the intrinsic time-variability of the…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Galaxies: Formation, Evolution, Phenomena · Adaptive optics and wavefront sensing
