Polarization of Thermal Emission from Aligned Dust Grains Under an Anisotropic Radiation Field
arXiv:astro-ph/9910560 · doi:10.1086/308658
Abstract
If aspherical dust grains are immersed in an anisotropic radiation field, their temperature depends on the cross-sections projected in the direction of the anisotropy.It was shown that the temperature difference produces polarized thermal emission even without alignment, if the observer looks at the grains from a direction different from the anisotropic radiation. When the dust grains are aligned, the anisotropy in the radiation makes various effects on the polarization of the thermal emission, depending on the relative angle between the anisotropy and alignment directions. If the both directions are parallel, the anisotropy produces a steep increase in the polarization degree at short wavelengths. If they are perpendicular, the polarization reversal occurs at a wavelength shorter than the emission peak. The effect of the anisotropic radiation will make a change of more than a few % in the polarization degree for short wavelengths and the effect must be taken into account in the interpretation of the polarization in the thermal emission. The anisotropy in the radiation field produces a strong spectral dependence of the polarization degree and position angle, which is not seen under isotropic radiation. The dependence changes with the grain shape to a detectable level and thus it will provide a new tool to investigate the shape of dust grains. This paper presents examples of numerical calculations of the effects and demonstrates the importance of anisotropic radiation field on the polarized thermal emission.
13pages, 7figures
References in corpus (2)
Cited by in corpus (9)
- Milestones in the Observations of Cosmic Magnetic Fields
- JCMT BISTRO Survey observations of the Ophiuchus Molecular Cloud: Dust grain alignment properties inferred using a Ricean noise model
- Multiple scattering of polarized radiation by non-spherical grains: first results
- Probing the cold magnetized Universe with SPICA-POL (B-BOP)
- Near-Infrared Imaging Polarimetry of M42: Aperture Polarimetry of Point-like Sources
- The JCMT BISTRO Survey: Multi-wavelength polarimetry of bright regions in NGC 2071 in the far-infrared/submillimetre range, with POL-2 and HAWC+
- Cosmoglobe: Simulating zodiacal emission with ZodiPy
- The Temperature of Nonspherical Circumstellar Dust Grains
- Interplanetary Dust as a Foreground for the LiteBIRD CMB Satellite Mission