Retrieval of Thermally-Resolved Water Vapor Distributions in Disks Observed with JWST-MIRI

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Main Authors: Romero-Mirza, Carlos E., Banzatti, Andrea, Öberg, Karin I., Pontoppidan, Klaus M., Salyk, Colette, Najita, Joan, Blake, Geoffrey A., Krijt, Sebastiaan, Arulanantham, Nicole, Pinilla, Paola, Long, Feng, Rosotti, Giovanni, Andrews, Sean M., Wilner, David J., Calahan, Jenny, Collaboration, The JDISCS
Format: Preprint
Published: 2024
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author Romero-Mirza, Carlos E.
Banzatti, Andrea
Öberg, Karin I.
Pontoppidan, Klaus M.
Salyk, Colette
Najita, Joan
Blake, Geoffrey A.
Krijt, Sebastiaan
Arulanantham, Nicole
Pinilla, Paola
Long, Feng
Rosotti, Giovanni
Andrews, Sean M.
Wilner, David J.
Calahan, Jenny
Collaboration, The JDISCS
author_facet Romero-Mirza, Carlos E.
Banzatti, Andrea
Öberg, Karin I.
Pontoppidan, Klaus M.
Salyk, Colette
Najita, Joan
Blake, Geoffrey A.
Krijt, Sebastiaan
Arulanantham, Nicole
Pinilla, Paola
Long, Feng
Rosotti, Giovanni
Andrews, Sean M.
Wilner, David J.
Calahan, Jenny
Collaboration, The JDISCS
contents The mid-infrared water vapor emission spectrum provides a novel way to characterize the delivery of icy pebbles towards the innermost ($<5$ au) regions of planet-forming disks. Recently, JWST MIRI-MRS showed that compact disks exhibit an excess of low-energy water vapor emission relative to extended multi-gapped disks, suggesting that icy pebble drift is more efficient in the former. We carry out detailed emission line modeling to retrieve the excitation conditions of rotational water vapor emission in a sample of four compact and three extended disks within the JDISC Survey. We present two-temperature H$_2$O slab model retrievals and, for the first time, constrain the spatial distribution of water vapor by fitting parametric radial temperature and column density profiles. Such models statistically outperform the two-temperature slab fits. We find a correlation between the observable hot water vapor mass and stellar mass accretion rate, as well as an anti-correlation between cold water vapor mass and sub-mm dust disk radius, confirming previously reported water line flux trends. We find that the mid-IR spectrum traces H$_2$O with temperatures down to 180-300 K, but the coldest 150-170 K gas remains undetected. Furthermore the H$_2$O temperature profiles are generally steeper and cooler than the expected `super-heated' dust temperature in passive irradiated disks. The column density profiles are used to estimate icy pebble mass fluxes, which suggest that compact and extended disks may produce markedly distinct inner-disk exoplanet populations if local feeding mechanisms dominate their assembly.
format Preprint
id arxiv_https___arxiv_org_abs_2409_03831
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Retrieval of Thermally-Resolved Water Vapor Distributions in Disks Observed with JWST-MIRI
Romero-Mirza, Carlos E.
Banzatti, Andrea
Öberg, Karin I.
Pontoppidan, Klaus M.
Salyk, Colette
Najita, Joan
Blake, Geoffrey A.
Krijt, Sebastiaan
Arulanantham, Nicole
Pinilla, Paola
Long, Feng
Rosotti, Giovanni
Andrews, Sean M.
Wilner, David J.
Calahan, Jenny
Collaboration, The JDISCS
Earth and Planetary Astrophysics
The mid-infrared water vapor emission spectrum provides a novel way to characterize the delivery of icy pebbles towards the innermost ($<5$ au) regions of planet-forming disks. Recently, JWST MIRI-MRS showed that compact disks exhibit an excess of low-energy water vapor emission relative to extended multi-gapped disks, suggesting that icy pebble drift is more efficient in the former. We carry out detailed emission line modeling to retrieve the excitation conditions of rotational water vapor emission in a sample of four compact and three extended disks within the JDISC Survey. We present two-temperature H$_2$O slab model retrievals and, for the first time, constrain the spatial distribution of water vapor by fitting parametric radial temperature and column density profiles. Such models statistically outperform the two-temperature slab fits. We find a correlation between the observable hot water vapor mass and stellar mass accretion rate, as well as an anti-correlation between cold water vapor mass and sub-mm dust disk radius, confirming previously reported water line flux trends. We find that the mid-IR spectrum traces H$_2$O with temperatures down to 180-300 K, but the coldest 150-170 K gas remains undetected. Furthermore the H$_2$O temperature profiles are generally steeper and cooler than the expected `super-heated' dust temperature in passive irradiated disks. The column density profiles are used to estimate icy pebble mass fluxes, which suggest that compact and extended disks may produce markedly distinct inner-disk exoplanet populations if local feeding mechanisms dominate their assembly.
title Retrieval of Thermally-Resolved Water Vapor Distributions in Disks Observed with JWST-MIRI
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2409.03831