Protoplanetary disks: Sensitivity of the chemical composition to various model parameters
arXiv:1901.10191 · doi:10.1093/mnras/stz068
Abstract
Protoplanetary disks are challenging objects for astrochemical models due to strong density and temperature gradients and due to the UV photons 2D propagation. In this paper, we have studied the importance of several model parameters on the predicted column densities of observed species. We considered: 1) 2-phase (gas and homogeneous grains) or 3-phase (gas, surface, and bulk of grains) models, 2) several initial compositions, 3) grain growth and dust settling, and 4) several cosmic-ray ionization rates. Our main result is that dust settling is the most crucial parameter. Including this effect renders the computed column densities sensitive to all the other model parameters, except cosmic-ray ionization rate. In fact, we found almost no effect of this parameter for radii larger than 10 au (the minimum radius studied here) except for N2H+. We also compared all our models with all the column densities observed in the protoplanetary disk around DM Tau and were not able to reproduce all the observations despite the studied parameters. N2H+ seems to be the most sensitive species. Its observation in protoplanetary disks at large radius could indicate enough N2 in the gas-phase (inhibited by the 3-phase model, but boosted by the settling) and a low electron abundance (favored by low C and S elemental abundances).
Accepted for publication in MNRAS
References in corpus (16)
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- The 2014 KIDA network for interstellar chemistry
- Binding energies: new values and impact on the efficiency of chemical desorption
- Constraining the X-ray and Cosmic Ray Ionization Chemistry of the TW Hya Protoplanetary Disk: Evidence for a Sub-interstellar Cosmic Ray Rate
- Hydrocarbon emission rings in protoplanetary disks induced by dust evolution
- The Coupled Physical Structure of Gas and Dust in the IM Lup Protoplanetary Disk
- Modeling Complex Organic Molecules in dense regions: Eley-Rideal and complex induced reaction
- Global MHD simulations of stratified and turbulent protoplanetary discs. II. Dust settling
- Gas-grain chemistry in cold interstellar cloud cores with a microscopic Monte Carlo approach to surface chemistry
- Cold CO in circumstellar disks: On the effects of photodesorption and vertical mixing
- Cometary ices in forming protoplanetary disc midplanes
- Exclusion of Cosmic Rays in Protoplanetary Disks. II. Chemical Gradients and Observational Signatures
- The interstellar chemistry of C3H and C3H2 isomers
- Chemistry in Disks. IX. Observations and modeling of HCO+ and DCO+ in DM Tau
- Importance of the H2 abundance in protoplanetary disk ices for the molecular layer chemical composition
- Probing Dust Settling in Proto-planetary Disks with ALMA
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- Constraints of the formation and abundances of methyl carbamate, a glycine isomer, in hot corinos
- Physicochemical models: source-tailored or generic?
- Impact of Size-dependent Grain Temperature on Gas-Grain Chemistry in Protoplanetary Disks: the case of low mass star disks