Modelling predicts a molecule-rich disk around the AGB star L2 Puppis
M. Van de Sande, C. Walsh, T. Danilovich, F. De Ceuster, T. Ceulemans

TL;DR
This study models the physical and chemical structure of the disk around the AGB star L2 Puppis, revealing how disk chemistry varies with physical conditions and suggesting chemical tracers for disk detection.
Contribution
First chemical model of an AGB star disk combining physical structure with detailed chemistry, highlighting the impact of physical conditions on disk chemistry.
Findings
Disk's physical structure significantly influences its chemistry.
Surprisingly carbon-rich molecules form despite oxygen-rich environment.
Distinct chemical regimes driven by cosmic rays and interstellar radiation.
Abstract
The nearby oxygen-rich AGB star L2 Pup hosts a well-studied nearly edge-on disk. To date, disks around AGB stars have not been chemically studied in detail. By combining a parameterisation commonly used for protoplanetary disks and archival ALMA observations, we retrieved an updated density and temperature structure of this disk. This physical model was then used as input to the first chemical model of an AGB disk. The model shows that the physical structure of the disk has a large impact on its chemistry, with certain species showing large changes in column density relative to a radial outflow, indicating that chemistry could be used as a tracer of disks that cannot be directly imaged. Despite its oxygen-rich nature, the daughter species formed within the disk are surprisingly carbon-rich. Two chemical regimes can be distinguished: cosmic-ray induced chemistry in the midplane and…
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Taxonomy
TopicsAstronomy and Astrophysical Research · Stellar, planetary, and galactic studies · Astrophysics and Star Formation Studies
