Polarization from magnetized accretion discs: II. The effects of absorption opacity on Faraday rotation
arXiv:astro-ph/9612171 · doi:10.1046/j.1365-8711.1998.01107.x
Abstract
Equipartition magnetic fields can dramatically affect the polarization of radiation emerging from accretion disk atmospheres in active galactic nuclei. We extend our previous work on this subject by exploring the interaction between Faraday rotation and absorption opacity in local, plane-parallel atmospheres with parameters appropriate for accretion discs. Faraday rotation in pure scattering atmospheres acts to depolarize the radiation field by rotating the polarization planes of photons after last scattering. Absorption opacity in an unmagnetized atmosphere can increase or decrease the polarization compared to the pure scattering case, depending on the thermal source function gradient. Combining both Faraday rotation and absorption opacity, we find the following results. If absorption opacity is much larger than scattering opacity throughout the atmosphere, then Faraday rotation generally has only a small effect on the emerging polarization because of the small electron column density along a photon mean free path. However, if the absorption opacity is not too large and it acts alone to increase the polarization, then the effects of Faraday rotation can be enhanced over those in a pure scattering atmosphere. Finally, while Faraday rotation often depolarizes the radiation field, it can in some cases increase the polarization when the thermal source function does not rise too steeply with optical depth. We confirm the correctness of the Silant'ev (1979) analytic calculation of the high magnetic field limit of the pure scattering atmosphere, which we incorrectly disputed in our previous paper.
13 pages with 16 figures included in text of paper submitted to the Monthly Notices of the Royal Astronomical Society
Cited by in corpus (13)
- Magnetic Stress at the Marginally Stable Orbit: Altered Disk Structure, Radiation, and Black Hole Spin Evolution
- Non-LTE Models and Theoretical Spectra of Accretion Disks in Active Galactic Nuclei. III. Integrated Spectra for Hydrogen-Helium Disks
- Inferring the Inclination of a Black Hole Accretion Disk from Observations of its Polarized Continuum Radiation
- Spectropolarimetry of Seyfert 1 galaxies with equatorial scattering: Black hole masses and Broad Line Region characteristics
- The Effects of Magnetic Fields and Inhomogeneities on Accretion Disk Spectra and Polarization
- The buried Balmer-edge signatures from quasars
- A First Close Look at the Balmer-edge Behavior of the Quasar Big Blue Bump
- Accretion Disks and the Lyman Continuum Polarization of QSOs
- The Solution of the Milne Problem for Magnetized Atmosphere
- Compton scattering of polarized radiation in two phase accretion disks in active galactic nuclei
- The polarization effects of radiation from magnetized envelopes and extended accretion structures
- Radiation intensity and polarization in atmosphere with chaotic magnetic field
- The relationship between variable and polarized optical spectral components of luminous type 1 non-blazar quasars