Discovery of the Asymmetric Effect in the Response of Photoionization Gas
arXiv:2311.16463 · doi:10.1051/0004-6361/202556191
Abstract
The variability of quasar radiation provides a powerful probe of the photoionization response of ionized gas, which plays a central role in tracing cosmic evolution and plasma physics under extreme conditions. In this work, we investigate the physical origin of the asymmetric response observed in broad absorption line (BAL) systems and constrain the gas density and spatial scale of quasar outflows. Using time-dependent photoionization simulations and analytical estimates focused on CIV, we quantify the response timescales across different ionization states. Our results show that over 70\% of BAL gas exhibits a negative response to quasar dimming, indicating a strong asymmetry in ionization behavior. This asymmetry is driven by systematically shorter response timescales in higher ionization states. Given typical observational cadences longer than one day, the observed response pattern requires at least 40% of the BAL gas to have a density below $n_{\rm H} = 10^6\ \cc$, consistent with most measured BAL densities but significantly lower than typical accretion disk winds ($n_{\rm H} > 10^8\ \cc$). These findings suggest that BAL outflows either undergo substantial density evolution as they propagate or originate from larger-scale regions such as the dusty torus. The asymmetric response thus provides new constraints on the physical structure and origin of quasar outflows.
7 pages, 8 figures, Accepted for publication in A&A
References in corpus (19)
- Observational constraints on Cosmic Reionization
- Modeling the Time Variability of SDSS Stripe 82 Quasars as a Damped Random Walk
- Cool Outflows in Galaxies and their Implications
- A Luminous Quasar at Redshift 7.642
- Onset of Cosmic Reionization: Evidence of An Ionized Bubble Merely 680 Myrs after the Big Bang
- Semi-analytic forecasts for JWST -- IV. Implications for cosmic reionization and LyC escape fraction
- Physical Conditions in Quasar Outflows: VLT Observations of QSO 2359-1241
- Variation of ionizing continuum: the main driver of Broad Absorption Line Variability
- The properties of broad absorption line outflows based on a large sample of quasars
- Outflow and hot dust emission in broad absorption line quasars
- Evidence for quasar fast outflows being accelerated at the scale of tens of parsecs
- Correlation between the variation of the ionizing continuum and broad absorption lines
- TPHO: a time-dependent photoionisation model for AGN outflows
- Ionization driven intrinsic absorption line variability of BAL quasars in the Stripe 82 region
- Dust-driven wind as a model of Broad Absorption Line quasars
- VLT/UVES Observation of the SDSS J2357-0048 Outflow
- Time Dependent Photoionization Modeling of Warm Absorbers in Active Galactic Nuclei
- VLT/UVES Observation of the Outflow in Quasar SDSS J1439-0106
- A sharp rise in the detection rate of broad absorption line variations in a quasar SDSS J141955.26+522741.1