A tension between dust and gas radii: the role of substructures and external photoevaporation in protoplanetary disks

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Main Authors: Delussu, Luca, Anania, Rossella, Birnstiel, Tilman, Toci, Claudia, Rosotti, Giovanni, Stammler, Sebastian Markus, Lau, Tommy Chi Ho, Miotello, Anna
Format: Preprint
Published: 2026
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author Delussu, Luca
Anania, Rossella
Birnstiel, Tilman
Toci, Claudia
Rosotti, Giovanni
Stammler, Sebastian Markus
Lau, Tommy Chi Ho
Miotello, Anna
author_facet Delussu, Luca
Anania, Rossella
Birnstiel, Tilman
Toci, Claudia
Rosotti, Giovanni
Stammler, Sebastian Markus
Lau, Tommy Chi Ho
Miotello, Anna
contents Protoplanetary disk substructures are thought to play a crucial role in disk evolution and planet formation. Population studies of disks large-sample size surveys show that substructures, and their rapid formation, are needed to reproduce the observed spectral indices. Moreover, they enable the simultaneous reproduction of the observed spectral index and size-luminosity distributions. This study aims to investigate the necessity of substructures and predict their characteristics to reproduce gas-to-dust size ratios observed in the Lupus star-forming region. We performed a population synthesis study of gas and dust evolution in disks using a two-population model (two-pop-py) and the DustPy code. We considered the effects of viscous evolution, dust growth, fragmentation, transport, and external photoevaporation. The simulated population distributions were obtained by post-processing the resulting disk profiles of surface density, maximum grain size, and disk temperature. Although substructures help reduce the discrepancy between simulated and observed disk gas-to-dust size ratios; even when accounting for external photoevaporation, they do not fully resolve it. Only specific initial conditions in disks undergoing viscous evolution with external photoevaporation can reproduce the observations, highlighting a fine-tuning problem. While substructured disks reproduce dust size and spectral index, they tend to overestimate gas radii. The results ultimately highlight the main challenge of simultaneously reproducing gas and dust sizes. One possible explanation is that the outermost substructure is linked to the disk truncation radius, which determines the gas radius, or that substructures are frequent enough to always be near the gas outer radius.
format Preprint
id arxiv_https___arxiv_org_abs_2602_07528
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A tension between dust and gas radii: the role of substructures and external photoevaporation in protoplanetary disks
Delussu, Luca
Anania, Rossella
Birnstiel, Tilman
Toci, Claudia
Rosotti, Giovanni
Stammler, Sebastian Markus
Lau, Tommy Chi Ho
Miotello, Anna
Earth and Planetary Astrophysics
Protoplanetary disk substructures are thought to play a crucial role in disk evolution and planet formation. Population studies of disks large-sample size surveys show that substructures, and their rapid formation, are needed to reproduce the observed spectral indices. Moreover, they enable the simultaneous reproduction of the observed spectral index and size-luminosity distributions. This study aims to investigate the necessity of substructures and predict their characteristics to reproduce gas-to-dust size ratios observed in the Lupus star-forming region. We performed a population synthesis study of gas and dust evolution in disks using a two-population model (two-pop-py) and the DustPy code. We considered the effects of viscous evolution, dust growth, fragmentation, transport, and external photoevaporation. The simulated population distributions were obtained by post-processing the resulting disk profiles of surface density, maximum grain size, and disk temperature. Although substructures help reduce the discrepancy between simulated and observed disk gas-to-dust size ratios; even when accounting for external photoevaporation, they do not fully resolve it. Only specific initial conditions in disks undergoing viscous evolution with external photoevaporation can reproduce the observations, highlighting a fine-tuning problem. While substructured disks reproduce dust size and spectral index, they tend to overestimate gas radii. The results ultimately highlight the main challenge of simultaneously reproducing gas and dust sizes. One possible explanation is that the outermost substructure is linked to the disk truncation radius, which determines the gas radius, or that substructures are frequent enough to always be near the gas outer radius.
title A tension between dust and gas radii: the role of substructures and external photoevaporation in protoplanetary disks
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2602.07528