English

Solving grain size inconsistency between ALMA polarization and VLA continuum in the Ophiuchus IRS 48 protoplanetary disk

Earth and Planetary Astrophysics 2020-09-09 v1 Astrophysics of Galaxies Solar and Stellar Astrophysics

Abstract

The protoplanetary disk around Ophiuchus IRS 48 shows an azimuthally asymmetric dust distribution in (sub-)millimeter observations, which is interpreted as a vortex, where millimeter/centimeter-sized particles are trapped at the location of the continuum peak. In this paper, we present 860 μ\mum ALMA observations of polarized dust emission of this disk. The polarized emission was detected toward a part of the disk. The polarization vectors are parallel to the disk minor axis, and the polarization fraction was derived to be 121-2\%. These characteristics are consistent with models of self-scattering of submillimeter-wave emission, which indicate a maximum grain size of 100\sim100 μ\mum. However, this is inconsistent with the previous interpretation of millimeter/centimeter dust particles being trapped by a vortex. To explain both, ALMA polarization and previous ALMA and VLA observations, we suggest that the thermal emission at 860 μ\mum wavelength is optically thick (τabs7.3\tau_{\rm abs}\sim7.3) at the dust trap with the maximum observable grain size of 100\sim100 μ\mum rather than an optically thin case with \sim cm dust grains. We note that we cannot rule out that larger dust grains are accumulated near the midplane if the 860 μ\mum thermal emission is optically thick.

Keywords

Cite

@article{arxiv.2007.15014,
  title  = {Solving grain size inconsistency between ALMA polarization and VLA continuum in the Ophiuchus IRS 48 protoplanetary disk},
  author = {Satoshi Ohashi and Akimasa Kataoka and Nienke Van der Marel and Charles L. H. Hull and William R. F. Dent and Adriana Pohl and Paola Pinilla and Ewine F. van Dishoeck and Thomas Henning},
  journal= {arXiv preprint arXiv:2007.15014},
  year   = {2020}
}

Comments

22 pages, 17 figures, accepted for publication in ApJ