English

XUE. Thermochemical Modeling Suggests a Compact and Gas-Depleted Structure for a Distant, Irradiated Protoplanetary Disk

Earth and Planetary Astrophysics 2025-04-02 v1 Solar and Stellar Astrophysics

Abstract

Unveiling the physical structure of protoplanetary disk is crucial for interpreting the diversity of the exoplanet population. Until recently, the census of the physical properties of protoplanetary disks probed by mid-infrared observations was limited to the solar neighborhood (d250d \lesssim 250 pc); however, nearby star-forming regions (SFRs) such as Taurus -- where no O-type stars reside -- are not representative of the environments where the majority of the planet formation occurs in the Galaxy. The James Webb Space Telescope (JWST) now enables observations of disks in distant high-mass SFRs, where strong external Far-Ultraviolet (FUV) radiation is expected to impact those disks. Nevertheless, a detailed characterization of externally irradiated disks is still lacking. We use the thermochemical code ProDiMo to model JWST/MIRI spectroscopy and archival visual/near-infrared photometry aiming to constrain the physical structure of the irradiated disk around the solar-mass star XUE 1 in NGC 6357 (d1690d \approx 1690 pc). Our findings are: (1) Mid-infrared dust emission features are explained by amorphous and crystalline silicates with compositions similar to nearby disks. (2) The molecular features detected with MIRI originate within the first 1\sim 1 au, consistent with slab models' results. (3) Our model favors a disk truncated at 1010 au with a gas-to-dust ratio of unity in the outskirts. (4) Comparing models of the same disk structure under different irradiation levels, we find that strong external irradiation raises gas temperature tenfold and boosts water abundance beyond 1010 au by a factor of 100100. Our findings suggest the inner disk resists external irradiation, retaining the elements necessary for planet formation.

Keywords

Cite

@article{arxiv.2504.00841,
  title  = {XUE. Thermochemical Modeling Suggests a Compact and Gas-Depleted Structure for a Distant, Irradiated Protoplanetary Disk},
  author = {Bayron Portilla-Revelo and Konstantin V. Getman and María Claudia Ramírez-Tannus and Thomas J. Haworth and Rens Waters and Arjan Bik and Eric D. Feigelson and Inga Kamp and Sierk E. van Terwisga and Jenny Frediani and Thomas Henning and Andrew J. Winter and Veronica Roccatagliata and Thomas Preibisch and Elena Sabbi and Peter Zeidler and Michael A. Kuhn},
  journal= {arXiv preprint arXiv:2504.00841},
  year   = {2025}
}

Comments

20 pages, 7 figures, 3 tables. Accepted for publication in The Astrophysical Journal, March 28, 2025