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Minds: A transition from H2O to C2Hdominated disk spectra with decreasing stellar luminosity

S. L. Grant*, M. Temmink, E. F. van Dishoeck, D. Gasman, A. M. Arabhavi, B. Tabone, T. Henning, I. Kamp, A. Garatti, V. Christiaens, P. Esteve, M. Gudel, H. Jang, T. Kaeufer, N. T. Kurtovic, M. Morales-Calderon, G. Perotti, K. Schwarz, A. D. Sellek, L. M. StapperM. Vlasblom, L. B. F. M. Waters

*Corresponding author af dette arbejde

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningpeer review

12 Citationer (Scopus)
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Abstract

Context. The chemical composition of the inner regions of disks around young stars will largely determine the properties of planets that form in these regions. Many physical processes in the disks drive their chemical evolution, and some of them depend on and/or correlate with the stellar properties.Aims. We explore the connection between stellar properties and the chemistry of the inner disk in protoplanetary disks as traced by mid-infrared spectroscopy.Methods. We used JWST-MIRI observations of a large diverse sample of sources to explore trends between the carbon-bearing molecule C2H2 and the oxygen-bearing molecule H2O. Additionally, we calculated the average spectrum for the T Tauri (M-*>0.2 M-circle dot) and very low-mass star (VLMS; M-*,<= 0.2 M-circle dot) samples from JWST-MIRI MRS data and used slab models to determine the properties of the average spectra in each subsample.Results. We find a significant anticorrelation between the flux ratio of C2H2/H2O and the stellar luminosity. The FC2H2/FH2O flux ratios of disks around VLMSs are significantly higher than the fluxes in their higher-mass counterparts. This is driven by the generally weak H2O and strong C2H2 in disks around low-mass hosts. We also explored trends with the strength of the 10 mu m silicate feature, the stellar accretion rate, and the disk dust mass. They are all correlated with FC2H2/FH2O, which may be related to processes that drive the carbon enrichment in disks around VLMSs, but are also degenerate with the system properties (i.e., the M-*-M and M-*-M-disk relations). Slab model fits to the average spectra show that H2O emission in the VLMS sample is quite similar in temperature and column density to a warm (similar to 600 K) H2O component in the T Tauri spectrum. This indicates that the high C/O gas-phase ratio in these disks is not due to oxygen depletion alone. Instead, the many hydrocarbons, including some with high column densities, suggest that carbon enhancement occurs in the disks around VLMSs.Conclusions. The observed differences in the chemistry of the inner disk as a function of host properties are likely to be accounted for by differences in the disk temperatures, stellar radiation field, and the evolution of dust grains.
OriginalsprogEngelsk
ArtikelnummerA126
TidsskriftAstronomy & Astrophysics
Vol/bind702
Antal sider15
ISSN0004-6361
DOI
StatusUdgivet - 10 okt. 2025

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