The Carbon Isotopic Ratio and Planet Formation

Fuente: arXiv
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Main Authors: Bergin, Edwin A., Bosman, Arthur, Teague, Richard, Calahan, Jenny, Willacy, Karen, Cleeves, L. Ilsedore, Schwarz, Kamber, Zhang, Ke, Bruderer, Simon
Format: Preprint
Published: 2024
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author Bergin, Edwin A.
Bosman, Arthur
Teague, Richard
Calahan, Jenny
Willacy, Karen
Cleeves, L. Ilsedore
Schwarz, Kamber
Zhang, Ke
Bruderer, Simon
author_facet Bergin, Edwin A.
Bosman, Arthur
Teague, Richard
Calahan, Jenny
Willacy, Karen
Cleeves, L. Ilsedore
Schwarz, Kamber
Zhang, Ke
Bruderer, Simon
contents We present the first detection of 13CCH in a protoplanetary disk (TW Hya). Using observations of C2H we measure CCH/13CCH = 65 +/- 20 in gas with a CO isotopic ratio of 12CO/13CO = 21 +/- 5 (Yoshida et al. 2022a). The TW Hya disk exhibits a gas phase C/O that exceeds unity and C2H is the tracer of this excess carbon. We confirm that the TW Hya gaseous disk exhibits two separate carbon isotopic reservoirs as noted previously (Yoshida et al. 2022a). We explore two theoretical solutions for the development of this dichotomy. One model represents TW Hya today with a protoplanetary disk exposed to a cosmic ray ionization rate that is below interstellar as consistent with current estimates. We find that this model does not have sufficient ionization in cold (T < 40 K) layers to activate carbon isotopic fractionation. The second model investigates a younger TW Hya protostellar disk exposed to an interstellar cosmic ray ionization rate. We find that the younger model has sources of ionization deeper in a colder disk that generates two independent isotopic reservoirs. One reservoir is 12C-enriched carried by methane/hydrocarbon ices and the other is 13C-enriched carried by gaseous CO. The former potentially provides a source of methane/hydrocarbon ices to power the chemistry that generates the anomalously strong C$_2$H emission in this (and other) disk systems in later stages. The latter provides a source of gaseous 13C-rich material to generate isotopic enrichments in forming giant planets as recently detected in the super-Jupiter TYC 8998-760-1 b by Zhang et al. (2021).
format Preprint
id arxiv_https___arxiv_org_abs_2403_09739
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Carbon Isotopic Ratio and Planet Formation
Bergin, Edwin A.
Bosman, Arthur
Teague, Richard
Calahan, Jenny
Willacy, Karen
Cleeves, L. Ilsedore
Schwarz, Kamber
Zhang, Ke
Bruderer, Simon
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
We present the first detection of 13CCH in a protoplanetary disk (TW Hya). Using observations of C2H we measure CCH/13CCH = 65 +/- 20 in gas with a CO isotopic ratio of 12CO/13CO = 21 +/- 5 (Yoshida et al. 2022a). The TW Hya disk exhibits a gas phase C/O that exceeds unity and C2H is the tracer of this excess carbon. We confirm that the TW Hya gaseous disk exhibits two separate carbon isotopic reservoirs as noted previously (Yoshida et al. 2022a). We explore two theoretical solutions for the development of this dichotomy. One model represents TW Hya today with a protoplanetary disk exposed to a cosmic ray ionization rate that is below interstellar as consistent with current estimates. We find that this model does not have sufficient ionization in cold (T < 40 K) layers to activate carbon isotopic fractionation. The second model investigates a younger TW Hya protostellar disk exposed to an interstellar cosmic ray ionization rate. We find that the younger model has sources of ionization deeper in a colder disk that generates two independent isotopic reservoirs. One reservoir is 12C-enriched carried by methane/hydrocarbon ices and the other is 13C-enriched carried by gaseous CO. The former potentially provides a source of methane/hydrocarbon ices to power the chemistry that generates the anomalously strong C$_2$H emission in this (and other) disk systems in later stages. The latter provides a source of gaseous 13C-rich material to generate isotopic enrichments in forming giant planets as recently detected in the super-Jupiter TYC 8998-760-1 b by Zhang et al. (2021).
title The Carbon Isotopic Ratio and Planet Formation
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2403.09739