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Astrophysics > Earth and Planetary Astrophysics

arXiv:2403.13591 (astro-ph)
[Submitted on 20 Mar 2024]

Title:MINDS. The DR Tau disk I: combining JWST-MIRI data with high-resolution CO spectra to characterise the hot gas

Authors:Milou Temmink, Ewine F. van Dishoeck, Sierra L. Grant, Benoit Tabone, Danny Gasman, Valentin Christiaens, Matthias Samland, Ioannis Argyriou, Giulia Perotti, Manuel Guedel, Thomas Henning, Pierre-Oliver Lagage, Alian Abergel, Olivier Absil, David Barrado, Alessio Caratti o Garatti, Adrian M. Glauser, Inga Kamp, Fred Lahuis, Goeran Olofsson, Tom P. Ray, Silvia Scheithauer, Bart Vandenbussche, Rens L.B.F.M. Waters, Aditya M. Arabhavi, Hyerin Jang, Jayatee Kanwar, Maria Morales-Calderon, Donna Rodgers-Lee, Juergen Schreiber, Kamber Schwarz, Luis Colina
View a PDF of the paper titled MINDS. The DR Tau disk I: combining JWST-MIRI data with high-resolution CO spectra to characterise the hot gas, by Milou Temmink and 31 other authors
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Abstract:The MRS mode of the JWST-MIRI instrument has been shown to be a powerful tool to characterise the molecular gas emission of the inner region of planet-forming disks. Here, we analyse the spectrum of the compact T-Tauri disk DR Tau, which is complemented by high spectral resolution (R~60000-90000) CO ro-vibrational observations. Various molecular species, including CO, CO$_2$, HCN, and C$_2$H$_2$ are detected in the JWST-MIRI spectrum, for which excitation temperatures of T~325-900 K are retrieved using LTE slab models. The high-resolution CO observations allow for a full treatment of the line profiles, which show evidence for two components of the main isotopologue, $^{12}$CO: a broad component tracing the Keplerian disk and a narrow component tracing a slow disk wind. Rotational diagrams yield excitation temperatures of T>725 K for CO, with consistently lower temperatures found for the narrow components, suggesting that the disk wind is launched from a larger distance. The inferred excitation temperatures for all molecules suggest that CO originates from the highest atmospheric layers close to the host star, followed by HCN and C$_2$H$_2$, which emit, together with $^{13}$CO, from slightly deeper layers, whereas the CO$_2$ originates from even deeper inside or further out in the disk. Additional analysis of the $^{12}$CO line wings hint at a misalignment between the inner (i~20 degrees) and outer disk (i~5 degrees). Finally, we emphasise the need for complementary high-resolution CO observations, as in combination with the JWST-MIRI observations they can be used to characterise the CO kinematics and the physical and chemical conditions of the other observed molecules with respect to CO.
Comments: Accepted for publication in Astronomy & Astrophysics on 20/03/2024
Subjects: Earth and Planetary Astrophysics (astro-ph.EP); Solar and Stellar Astrophysics (astro-ph.SR)
Cite as: arXiv:2403.13591 [astro-ph.EP]
  (or arXiv:2403.13591v1 [astro-ph.EP] for this version)
  https://doi.org/10.48550/arXiv.2403.13591
arXiv-issued DOI via DataCite

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From: Milou Temmink [view email]
[v1] Wed, 20 Mar 2024 13:41:54 UTC (6,164 KB)
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