Inferring (Sub)millimeter Dust Opacities and Temperature Structure in Edge-on Protostellar Disks From Resolved Multi-Wavelength Continuum Observations: The Case of the HH 212 Disk
Zhe-Yu Daniel Lin, Chin-Fei Lee, Zhi-Yun Li, John Tobin, and Neal, Turner

TL;DR
This paper presents a method to determine dust opacities and temperature structures in edge-on protostellar disks using multi-wavelength continuum observations, applied to the HH 212 disk with high-resolution ALMA and VLA data.
Contribution
The study introduces a new approach to constrain dust opacities in disks from observational data, extending the analysis with radiative transfer modeling, and applies it to the HH 212 disk.
Findings
Measured dust opacities consistent with established models.
Inferred temperature of ~45K at the disk edge, increasing inward.
Support for the standard opacity prescription from Beckwith et al. (1990).
Abstract
(Sub)millimeter dust opacities are required for converting the observable dust continuum emission to the mass, but their values have long been uncertain, especially in disks around young stellar objects. We propose a method to constrain the opacity in edge-on disks from a characteristic optical depth , the density and radius at the disk outer edge through where is inferred from the shape of the observed flux along the major axis, from gravitational stability considerations, and from direct imaging. We applied the 1D semi-analytical model to the embedded, Class 0, HH 212 disk, which has high-resolution data in ALMA Band 9, 7, 6, and 3 and VLA Ka band (=0.43, 0.85, 1.3, 2.9, and 9.1 mm). The modeling of the HH 212 disk is extended to 2D through RADMC-3D radiative…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
