Published June 1, 2019 | Version Published + Accepted Version
Journal Article Open

Unlocking CO Depletion in Protoplanetary Disks II. Primordial C/H Predictions Inside the CO Snowline

  • 1. ROR icon University of Michigan–Ann Arbor
  • 2. ROR icon University of Arizona
  • 3. ROR icon University of Virginia
  • 4. ROR icon Harvard-Smithsonian Center for Astrophysics
  • 5. ROR icon California Institute of Technology

Abstract

CO is thought to be the main reservoir of volatile carbon in protoplanetary disks, and thus the primary initial source of carbon in the atmospheres of forming giant planets. However, recent observations of protoplanetary disks point toward low volatile carbon abundances in many systems, including at radii interior to the CO snowline. One potential explanation is that gas phase carbon is chemically reprocessed into less volatile species, which are frozen on dust grain surfaces as ice. This mechanism has the potential to change the primordial C/H ratio in the gas. However, current observations primarily probe the upper layers of the disk. It is not clear if the low volatile carbon abundances extend to the midplane, where planets form. We have run a grid of 198 chemical models, exploring how the chemical reprocessing of CO depends on disk mass, dust grain size distribution, temperature, cosmic-ray and X-ray ionization rate, and initial water abundance. Building on our previous work focusing on the warm molecular layer, here we analyze the results for our grid of models in the disk midplane at 12 au. We find that either an ISM level cosmic-ray ionization rate or the presence of UV photons due to a low dust surface density are needed to chemically reduce the midplane CO gas abundance by at least an order of magnitude within 1 Myr. In the majority of our models CO does not undergo substantial reprocessing by in situ chemistry and there is little change in the gas phase C/H and C/O ratios over the lifetime of the typical disk. However, in the small subset of disks where the disk midplane is subject to a source of ionization or photolysis, the gas phase C/O ratio increases by up to nearly 9 orders of magnitude due to conversion of CO into volatile hydrocarbons.

Additional Information

© 2019 The American Astronomical Society. Received 2019 February 4; revised 2019 April 7; accepted 2019 April 23; published 2019 June 4. This work was supported by funding from NSF grant AST-1514670 and NASA NNX16AB48G. K.S. and K.Z. acknowledge the support of NASA through Hubble Fellowship Program grants HST-HF2-51419.001 and HST-HF2-51401.001, awarded by the Space Telescope Science Institute, which is operated by the Association of Universities for Research in Astronomy, Inc., for NASA, under contract NAS5-26555. Software: GNU Parallel (Tange 2011), IDL, matplotlib (Hunter 2007), numpy (van der Walt et al. 2011), pandas (McKinney et al. 2010), scipy (Jones et al. 2001), TORUS (Harries 2000).

Attached Files

Published - Schwarz_2019_ApJ_877_131.pdf

Accepted Version - 1904.10422.pdf

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Additional details

Identifiers

Eprint ID
95165
Resolver ID
CaltechAUTHORS:20190502-091609548

Related works

Funding

NSF
AST-1514670
NASA
NNX16AB48G
NASA Hubble Fellowship
HST-HF2-51419.001
NASA Hubble Fellowship
HST-HF2-51401.001
NASA
NAS5-26555

Dates

Created
2019-05-02
Created from EPrint's datestamp field
Updated
2021-11-16
Created from EPrint's last_modified field