Interpreting the scattering surface in protoplanetary disks
Massimiliano Bolchini, Giovanni Rosotti, Marion Villenave, Antonio Garufi, Myriam Benisty, Tilman Birnstiel, Stefano Facchini, Leonardo Testi
astro-ph.EP
Submitted: 2026-06-22
Comments: 16 pages, 22 figures. Accepted for publication in Astronomy & Astrophysics Updated bibliography to cite the published version of a previously referenced manuscript in preparation
License: http://creativecommons.org/licenses/by/4.0/
The gist: In recent years, extreme adaptive optics have enabled high-resolution, high-contrast scattered-light observations of protoplanetary disks.
Terminology
Abstract
In recent years, extreme adaptive optics have enabled high-resolution, high-contrast scattered-light observations of protoplanetary disks. Interpreting these observations requires an understanding of the scattering surface, which is shaped by the distribution of small dust grains and determines how disks appear in scattered light. We aim to exploit measurements of the scattering surface height to directly constrain the masses of small dust grains in disks. Starting from radiative transfer principles, we developed a semi-analytical model of the stellar radiation path and its interaction with the disk, deriving the height of the scattering surface as a function of disk parameters such as mass, temperature, and opacity. We validated our predictions against the radiative transfer code MCFOST. Using measured scattering heights, we inferred the mass of dust in small grains and the particle size distribution for a sample of ten disks. We confirm previous results indicating that the scattering surface coincides with the region where the integrated optical depth along the stellar path is of order unity. The thermal structure of the disk significantly affects the surface height, while dust settling and anisotropic scattering have comparatively minor effects. Applying our model to observations, we measure global small-dust mass fractions of order (10-3). Using dust-opacity models, we show that these values are consistent with modest grain growth ((a max 0.1, mm)) and grain-size distribution power-law indices of approximately 3--3.5, as commonly predicted by grain-growth models. Scattering-surface measurements, together with constraints on the disk thermal structure, provide a powerful method for determining the small-dust content of protoplanetary disks.
Sources
- Measuring the Two-Dimensional Thermal Structures of Protoplanetary Disks
- Extending dynamical mass measurements: probing GI as a possible origin of mm-dust spirals
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