Chemical Feedbacks of Pebble Growth: Impacts on CO depletion and C/O ratios
arXiv:2202.00524 · doi:10.3847/1538-4357/ac511b
Abstract
Observations of protoplanetary disks have revealed them to be complex and dynamic, with vertical and radial transport of gas and dust occurring simultaneously with chemistry and planet formation. Previous models of protoplanetary disks focused primarily on chemical evolution of gas and dust in a static disk, or dynamical evolution of solids in a chemically passive disk. In this paper, we present a new 1D method for modelling pebble growth and chemistry simultaneously. Gas and small dust particles are allowed to diffuse vertically, connecting chemistry at all elevations of the disk. Pebbles are assumed to form from the dust present around the midplane, inheriting the composition of ices at this location. We present the results of this model after 1 Myr of disk evolution around a 1 star at various locations both inside and outside of the CO snowline. We find that for a turbulent disk (), CO is depleted from the surface layers of the disk by roughly 1-2 orders of magnitude, consistent with observations of protoplanetary disks. This is achieved by a combination of ice sequestration and decreasing UV opacity, both driven by pebble growth. Further, we find the selective removal of ice species via pebble growth and sequestration can increase gas phase C/O ratios to values of approximately unity. However, our model is unable to produce C/O values of 1.5-2.0 inferred from protoplanetary disk observations, implying selective sequestration of ice is not sufficient to explain C/O ratios .
20 pages, 16 figures, 3 tables, accepted to ApJ
References in corpus (14)
- Array Programming with NumPy
- A Three-Dimensional View of Turbulence: Constraints on Turbulent Motions in the HD 163296 Protoplanetary Disk using DCO
- Lupus disks with faint CO isotopologues: low gas/dust or large carbon depletion?
- Hydrocarbon emission rings in protoplanetary disks induced by dust evolution
- CO Depletion in Protoplanetary Disks: A Unified Picture Combining Physical Sequestration and Chemical Processing
- Planet-forming material in a protoplanetary disc: the interplay between chemical evolution and pebble drift
- Reprocessing of Ices in Turbulent Protoplanetary Disks: Carbon and Nitrogen Chemistry
- A survey of C2H, HCN, and C18O in protoplanetary disks
- Consistent dust and gas models for protoplanetary disks: II. Chemical networks and rates
- Chemistry in Protoplanetary Disks: the gas-phase CO/H2 ratio and the Carbon reservoir
- Destruction of Refractory Carbon in Protoplanetary Disks
- An evolutionary study of volatile chemistry in protoplanetary disks
- Destruction of refractory carbon grains drives the final stage of proto-planetary disk chemistry
- Tracking Dust Grains During Transport and Growth in Protoplanetary Disks