The chemical inventory of the planet-hosting disk PDS 70
Author
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Facchini, Stefano
Author
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Teague, Richard
Author
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Bae, Jaehan
Author
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Benisty, Myriam
Author
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Keppler, Miriam
Author
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Isella, Andrea
Admission date
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2021-11-26T18:51:18Z
Available date
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2021-11-26T18:51:18Z
Publication date
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2021
Cita de ítem
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Astronomical Journal Volume 162 Issue3 Article Number 99 Sep 2021
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Identifier
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10.3847/1538-3881/abf0a4
Identifier
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https://repositorio.uchile.cl/handle/2250/182904
Abstract
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As host to two accreting planets, PDS 70 provides a unique opportunity to probe the chemical complexity of atmosphere-forming material. We present ALMA Band 6 observations of the PDS 70 disk and report the first chemical inventory of the system. With a spatial resolution of 0.'' 4-0.'' 5 (similar to 50 au), 12 species are detected, including CO isotopologs and formaldehyde, small hydrocarbons, HCN and HCO+ isotopologs, and S-bearing molecules. SO and CH3OH are not detected. All lines show a large cavity at the center of the disk, indicative of the deep gap carved by the massive planets. The radial profiles of the line emission are compared to the (sub)millimeter continuum and infrared scattered light intensity profiles. Different molecular transitions peak at different radii, revealing the complex interplay between density, temperature, and chemistry in setting molecular abundances. Column densities and optical depth profiles are derived for all detected molecules, and upper limits obtained for the nondetections. Excitation temperature is obtained for H2CO. Deuteration and nitrogen fractionation profiles from the hydrocyanide lines show radially increasing fractionation levels. Comparison of the disk chemical inventory to grids of chemical models from the literature strongly suggests a disk molecular layer hosting a carbon-to-oxygen ratio C/O > 1, thus providing for the first time compelling evidence of planets actively accreting high C/O ratio gas at present time.
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Patrocinador
dc.description.sponsorship
European Unions Horizon 2020 research and innovation program under the Marie Sklodowska-Curie grant 823823
NASA through the NASA Hubble Fellowship grant - Space Telescope Science Institute HST-HF2-51427.001-A
NASA contract NAS5-26555
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Lenguage
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en
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Publisher
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IOP
es_ES
Type of license
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Attribution-NonCommercial-NoDerivs 3.0 United States