Importance of the H2 abundance in protoplanetary disk ices for the molecular layer chemical composition
arXiv:1609.01471 · doi:10.1051/0004-6361/201628748
Abstract
Protoplanetary disks are the target of many chemical studies (both observational and theoretical) as they contain the building material for planets. Their large vertical and radial gradients in density and temperature make them challenging objects for chemical models. In the outer part of these disks, the large densities and low temperatures provide a particular environment where the binding of species onto the dust grains can be very efficient and can affect the gas-phase chemical composition. We attempt to quantify to what extent the vertical abundance profiles and the integrated column densities of molecules predicted by a detailed gas-grain code are affected by the treatment of the molecular hydrogen physisorption at the surface of the grains. We performed three different models using the Nautilus gas-grain code. One model uses a H2 binding energy on the surface of water (440 K) and produces strong sticking of H2. Another model uses a small binding energy of 23 K (as if there were already a monolayer of H2), and the sticking of H is almost negligible. Finally, the remaining model is an intermediate solution known as the encounter desorption mechanism. We show that the efficiency of molecular hydrogen binding (and thus its abundance at the surface of the grains) can have a quantitative effect on the predicted column densities in the gas phase of major species such as CO, CS, CN, and HCN.
Accepted for publication as a Research Note in A&A
References in corpus (7)
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- The 2014 KIDA network for interstellar chemistry
- Simulation of the Formation and Morphology of Ice Mantles on Interstellar Grains
- Modeling Complex Organic Molecules in dense regions: Eley-Rideal and complex induced reaction
- Cold CO in circumstellar disks: On the effects of photodesorption and vertical mixing
- Chemistry in Protoplanetary Disks: the gas-phase CO/H2 ratio and the Carbon reservoir
- A New and Simple Approach to Determine the Abundance of Hydrogen Molecules on Interstellar Ice Mantles
Cited by in corpus (9)
- Astrochemistry and compositions of planetary systems
- Sulfur chemistry in protoplanetary disks: CS and H2CS
- The role of C/O in nitrile astrochemistry in PDRs and planet-forming disks
- AB Aur, a Rosetta stone for studies of planet formation (I): chemical study of a planet-forming disk
- Chemical evolution during the formation of a protoplanetary disk
- Protoplanetary disks: Sensitivity of the chemical composition to various model parameters
- Molecules with ALMA at Planet-forming Scales (MAPS) XII: Inferring the C/O and S/H ratios in Protoplanetary Disks with Sulfur Molecules
- Protoplanetary Disk Chemistry
- Impact of Size-dependent Grain Temperature on Gas-Grain Chemistry in Protoplanetary Disks: the case of low mass star disks