The TW Hya Rosetta Stone Project IV: A hydrocarbon rich disk atmosphere
Abstract
Connecting the composition of planet-forming disks with that of gas giant exoplanet atmospheres, in particular through C/O ratios, is one of the key goals of disk chemistry. Small hydrocarbons like and have been identified as tracers of C/O, as they form abundantly under high C/O conditions. We present resolved observations from the TW Hya Rosetta Stone Project, a program designed to map the chemistry of common molecules at au resolution in the TW Hya disk. Augmented by archival data, these observations comprise the most extensive multi-line set for disks of both ortho and para spin isomers spanning a wide range of energies, K. We find the ortho-to-para ratio of is consistent with 3 throughout extent of the emission, and the total abundance of both isomers is per H atom, or % of the previously published abundance in the same source. We find comes from a layer near the surface that extends no deeper than . Our observations are consistent with substantial radial variation in gas-phase C/O in TW Hya, with a sharp increase outside au. Even if we are not directly tracing the midplane, if planets accrete from the surface via, e.g., meridonial flows, then such a change should be imprinted on forming planets. Perhaps interestingly, the HR 8799 planetary system also shows an increasing gradient in its giant planets' atmospheric C/O ratios. While these stars are quite different, hydrocarbon rings in disks are common, and therefore our results are consistent with the young planets of HR 8799 still bearing the imprint of their parent disk's volatile chemistry.
Cite
@article{arxiv.2102.09577,
title = {The TW Hya Rosetta Stone Project IV: A hydrocarbon rich disk atmosphere},
author = {L. Ilsedore Cleeves and Ryan A. Loomis and Richard Teague and Edwin A. Bergin and David J. Wilner and Jennifer B. Bergner and Geoffrey A. Blake and Jenny K. Calahan and Paolo Cazzoletti and Ewine F. van Dishoeck and Viviana V. Guzman and Michiel R. Hogerheijde and Jane Huang and Mihkel Kama and Karin I. Oberg and Chunhua Qi and Jeroen Terwisscha van Scheltinga and Catherine Walsh},
journal= {arXiv preprint arXiv:2102.09577},
year = {2021}
}
Comments
15 pages, 8 figures, Accepted in ApJ