Ice sublimation in the dynamic HD 100453 disk reveals a rich reservoir of inherited complex organics

Fuente: arXiv
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Main Authors: Booth, Alice S., Wölfer, Lisa, Temmink, Milou, Calahan, Jenny, Evans, Lucy, Law, Charles J., Leemker, Margot, Notsu, Shota, Öberg, Karin, Walsh, Catherine
Format: Preprint
Published: 2025
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author Booth, Alice S.
Wölfer, Lisa
Temmink, Milou
Calahan, Jenny
Evans, Lucy
Law, Charles J.
Leemker, Margot
Notsu, Shota
Öberg, Karin
Walsh, Catherine
author_facet Booth, Alice S.
Wölfer, Lisa
Temmink, Milou
Calahan, Jenny
Evans, Lucy
Law, Charles J.
Leemker, Margot
Notsu, Shota
Öberg, Karin
Walsh, Catherine
contents Protoplanetary disks around luminous young A-type stars are prime observational laboratories to determine the abundances of complex organic molecules (COMs) present during planet formation. In contrast to their lower stellar mass counterparts, these warmer disks contain the sublimation fronts of complex molecules such as CH3OH on spatial scales accessible with the Atacama Large Millimeter/submillimeter Array (ALMA). We present ALMA observations of the Herbig Ae disk HD 100453 that uncover a rich reservoir of COMs sublimating from the dust cavity edge. In addition to CH3OH, we detect 13CH3OH for the first time in a Class II disk, revealing a factor of three enhancement of 13C in the disk large organics. A tentative detection of CH2DOH is also reported, resulting in a D/H of 1-2%, which is consistent with the expected deuterium enhancement from the low temperature CH3OH formation in molecular clouds and with the deuteration of CH3OH measured in comets. The detection of methyl-formate (CH3OCHO), at only a few percent level of CH3OH is an order of magnitude lower compared to claims towards other organic-rich Herbig Ae disks but is more in line with organic abundance patterns towards the earlier stages of star formation. Together these data provide multiple lines of evidence that disks, and therefore the planet and comet-forming materials, contain inherited interstellar ices and perhaps the strongest evidence to date that much of the interstellar organic ice composition survives the early stages of planet formation.
format Preprint
id arxiv_https___arxiv_org_abs_2504_14023
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ice sublimation in the dynamic HD 100453 disk reveals a rich reservoir of inherited complex organics
Booth, Alice S.
Wölfer, Lisa
Temmink, Milou
Calahan, Jenny
Evans, Lucy
Law, Charles J.
Leemker, Margot
Notsu, Shota
Öberg, Karin
Walsh, Catherine
Earth and Planetary Astrophysics
Astrophysics of Galaxies
Solar and Stellar Astrophysics
Protoplanetary disks around luminous young A-type stars are prime observational laboratories to determine the abundances of complex organic molecules (COMs) present during planet formation. In contrast to their lower stellar mass counterparts, these warmer disks contain the sublimation fronts of complex molecules such as CH3OH on spatial scales accessible with the Atacama Large Millimeter/submillimeter Array (ALMA). We present ALMA observations of the Herbig Ae disk HD 100453 that uncover a rich reservoir of COMs sublimating from the dust cavity edge. In addition to CH3OH, we detect 13CH3OH for the first time in a Class II disk, revealing a factor of three enhancement of 13C in the disk large organics. A tentative detection of CH2DOH is also reported, resulting in a D/H of 1-2%, which is consistent with the expected deuterium enhancement from the low temperature CH3OH formation in molecular clouds and with the deuteration of CH3OH measured in comets. The detection of methyl-formate (CH3OCHO), at only a few percent level of CH3OH is an order of magnitude lower compared to claims towards other organic-rich Herbig Ae disks but is more in line with organic abundance patterns towards the earlier stages of star formation. Together these data provide multiple lines of evidence that disks, and therefore the planet and comet-forming materials, contain inherited interstellar ices and perhaps the strongest evidence to date that much of the interstellar organic ice composition survives the early stages of planet formation.
title Ice sublimation in the dynamic HD 100453 disk reveals a rich reservoir of inherited complex organics
topic Earth and Planetary Astrophysics
Astrophysics of Galaxies
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2504.14023