Self-scattering of non-spherical dust grains
arXiv:2004.13742 · doi:10.1051/0004-6361/202037943
Abstract
The understanding of (sub-)millimetre polarisation has made a leap forward since high-resolution imaging with ALMA came available. Amongst other effects, self-scattering (i.e., scattering of thermal dust emission on other grains) is thought to be the origin of millimetre polarisation. This opens the first window to a direct measurement of dust grain sizes in regions of optically thick continuum emission as it can be found in protoplanetary disks and star-forming regions. However, the newly derived values of grain sizes are usually around m and thus one order of magnitude smaller than those obtained from more indirect measurements as well as those expected from theory (mm). We see the origin of this contradiction in the applied dust model of today's self-scattering simulations: a perfect compact sphere. The aim of this study is to test our hypothesis by investigating the impact of non-spherical grain shapes on the self-scattering signal. We apply discrete dipole approximation simulations to investigate the influence of the grain shape on self-scattering polarisation in three scenarios: an unpolarised and polarised incoming wave under a fixed as well as a varying incident polarisation angle. We find significant deviations of the resulting self-scattering polarisation when comparing non-spherical to spherical grains, in particular outside the Rayleigh regime, i.e. for >100m size grains observed at m wavelength. Self-scattering by oblate grains produces higher polarisation degrees compared to spheres which challenges the interpretation of the origin of observed millimetre polarisation. A (nearly) perfect alignment of the non-spherical grains is required to account for the observed millimetre polarisation in protoplanetary disks. Our findings point towards a necessary re-evaluation of the dust grain sizes derived from (sub-)mm polarisation.
Accepted by A&A. Author accepted manuscript. Accepted on 28/04/2020. Deposited on 28/04/2020. 11 pages
References in corpus (10)
- Radiative torques: Analytical Model and Basic Properties
- The Radial Distribution of Dust Particles in the HL Tau Disk from ALMA and VLA Observations
- The evidence of radio polarization induced by the radiative grain alignment and self-scattering of dust grains in a protoplanetary disk
- ALMA Reveals Transition of Polarization Pattern with Wavelength in HL Tau's Disk
- Porous dust grains in debris disks
- Intrinsic polarisation of elongated porous dust grains
- Effect of dust grain porosity on the appearance of protoplanetary disks
- Magnetic fields in protoplanetary disks: from MHD simulations to ALMA observations
- Polarized emission by aligned grains in the Mie regime : application to protoplanetary disks observed by ALMA
- Polarization reversal of scattered thermal dust emission in protoplanetary disks at (sub-)mm wavelengths
Cited by in corpus (15)
- Characterizing the dust content of disk substructures in TW Hya
- Porous Dust Particles in Protoplanetary Disks: Application to the HL Tau Disk
- Retrieving Dust Grain Sizes from Photopolarimetry: An Experimental Approach
- The coexistence of the streaming instability and the vertical shear instability in protoplanetary disks: Planetesimal formation thresholds explored in two-dimensional global models
- Massive compact dust disk with a gap around CW Tau revealed by ALMA multi-band observations
- Low Level Carbon Monoxide Line Polarization in two Protoplanetary Disks: HD 142527 and IM Lup
- Self-scattering in protoplanetary disks with dust settling
- Self-scattering on large, porous grains in protoplanetary disks with dust settling
- Thermal Emission and Scattering by Aligned Grains: Plane-Parallel Model and Application to Multiwavelength Polarization of the HL Tau Disk
- The JCMT BISTRO Survey: Multi-wavelength polarimetry of bright regions in NGC 2071 in the far-infrared/submillimetre range, with POL-2 and HAWC+
- Massive Protostellar Disks as a Hot Laboratory of Silicate Grain Evolution
- Evidence of Grain Alignment by Magnetically Enhanced Radiative Torques from Multiwavelength Dust Polarization Modeling of HL Tau
- Multi-frequency analysis of the ALMA and VLA high resolution continuum observations of the substructured disc around CI Tau. Preference for sub-mm-sized low-porosity amorphous carbon grains
- Wavelength-dependent far-infrared polarization of HL Tau observed with SOFIA/HAWC+
- Exploring Polarized Millimeter Emission from Protoplanetary Disks with Irregular Dust Grains