Formation of Organic Molecules and Water in Warm Disk Atmospheres
arXiv:1109.6673 · doi:10.1088/0004-637X/743/2/147
Abstract
Observations from Spitzer and ground-based infrared spectroscopy reveal significant diversity in the molecular emission from the inner few AU of T Tauri disks. We explore theoretically the possible origin of this diversity by expanding on our earlier thermal-chemical model of disk atmospheres. We consider how variations in grain settling, X-ray irradiation, accretion-related mechanical heating, and the oxygen-to-carbon ratio can affect the thermal and chemical properties of the atmosphere at 0.25-40 AU. We find that these model parameters can account for many properties of the detected molecular emission. The column density of the warm (200-2000K) molecular atmosphere is sensitive to grain settling and the efficiency of accretion-related heating, which may account, at least in part, for the large range in molecular emission fluxes that have been observed. The dependence of the atmospheric properties on the model parameters may also help to explain trends that have been reported in the literature between molecular emission strength and mid-infrared color, stellar accretion rate, and disk mass. We discuss whether some of the differences between our model results and the observations (e.g., for water) indicate a role for vertical transport and freeze-out in the disk midplane. We also discuss how planetesimal formation in the outer disk (beyond the snowline) may imprint a chemical signature on the inner few AU of the disk and speculate on possible observational tracers of this process.
5 figures, accepted for publication in ApJ
References in corpus (9)
- A Unified Representation of Gas-Phase Element Depletions in the Interstellar Medium
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- Heat and Dust in Active Layers of Protostellar Disks
- Line Emission from Gas in Optically Thick Dust Disks around Young Stars
- Formation of Water in the Warm Atmospheres of Protoplanetary Disks
- Formation of simple organic molecules in inner T Tauri disks
- Gas-phase CO in protoplanetary disks: a challenge for turbulent mixing
- Turbulence driven diffusion in protoplanetary disks - chemical effects in the outer disk
- Effects of accretion flow on the chemical structure in the inner regions of protoplanetary disks
Cited by in corpus (48)
- Chemical consequences of the C/O ratio on hot Jupiters: Examples from WASP-12b,CoRoT-2b, XO-1b, and HD 189733b
- The molecular composition of the planet-forming regions of protoplanetary disks across the luminosity regime
- VLT-CRIRES Survey of Rovibrational CO Emission from Protoplanetary Disks
- DIGIT survey of far-infrared lines from protoplanetary disks I
- Evidence for a Snow Line Beyond the Transitional Radius in the TW Hya Protoplanetary Disk
- The Atomic and Molecular Content of Disks Around Very Low-mass Stars and Brown Dwarfs
- Hints for icy pebble migration feeding an oxygen-rich chemistry in the inner planet-forming region of disks
- Chemo-dynamical deuterium fractionation in the early solar nebula: The origin of water on Earth and in asteroids and comets
- Chemistry in an Evolving Protoplanetary Disk: Effects on Terrestrial Planet Composition
- Protoplanetary Disk Structure With Grain Evolution: the ANDES Model
- The HCN-Water Ratio in the Planet Formation Region of Disks
- The depletion of water during dispersal of planet-forming disk regions
- First Detection of Near-Infrared Line Emission from Organics in Young Circumstellar Disks
- CO2 infrared emission as a diagnostic of planet-forming regions of disks
- Abundant hydrocarbons in the disk around a very-low-mass star
- Modelling mid-infrared molecular emission lines from T Tauri stars
- Measurements of water surface snow lines in classical protoplanetary disks
- Uncertainties in water chemistry in disks: An application to TW Hya
- Ro-vibrational excitation of an organic molecule (HCN) in protoplanetary disks
- Close-in ice lines and the super-stellar C/O ratio in discs around very low-mass stars
- Numerical Simulations of Gaseous Disks Generated from Collisional Cascades at the Roche Limits of White Dwarf Stars
- The Chemical Inventory of the Inner Regions of Planet-forming Disks -- The JWST/MINDS Program
- Warm H2O and OH in the disk around the Herbig star HD 163296
- Understanding the water emission in the mid- and far-IR from protoplanetary disks around T~Tauri stars
- The kinematics and excitation of infrared water vapor emission from planet-forming disks: results from spectrally-resolved surveys and guidelines for JWST spectra
- Observing Carbon & Oxygen Carriers in Protoplanetary Disks at Mid-infrared Wavelengths
- Shielding by Water and OH in FUV and X-ray Irradiated Protoplanetary Disks
- Exploring organic chemistry in planet-forming zones
- A high resolution mid-infrared survey of water emission from protoplanetary disks
- The Evolution of Inner Disk Gas in Transition Disks
- The chemistry of planet-forming regions is not interstellar
- The nitrogen carrier in protoplanetary disks
- Optical TiO and VO band emission in two embedded protostars: IRAS 04369+2539 and IRAS 05451+0037
- FUV Irradiated Disk Atmospheres: Ly and the Origin of Hot H Emission
- Spectrally Resolved Mid-Infrared Molecular Emission from Protoplanetary Disks and the Chemical Fingerprint of Planetesimal Formation
- First-generation Science Cases for Ground-based Terahertz Telescopes
- HO distribution in the disc of HD 100546 and HD 163296: the role of dust dynamics and planet--disc interaction
- High-Resolution Mid-Infrared Spectroscopy of GV Tau N: Surface Accretion and Detection of Ammonia in a Young Protoplanetary Disk
- Dimming and CO absorption toward the AA Tau protoplanetary disk: An infalling flow caused by disk instability?
- CLIcK: a Continuum and Line fItting Kit for circumstellar disks
- Chemical transformation of CO in evolving protoplanetary discs across stellar masses: a route to C-rich inner regions
- Chemistry During the Gas-rich Stage of Planet Formation
- MINDS. Strong oxygen depletion in the inner regions of a very low-mass star disk?
- The role of atom tunneling in gas-phase reactions in planet-forming disks
- Tracking the Chemical Evolution of Hydrocarbons Through Carbon Grain Supply in Protoplanetary Disks
- Abundant hydrocarbons in a buried galactic nucleus with signs of carbonaceous grain and polycyclic aromatic hydrocarbon processing
- How leaky? A large parameter study of leaky dust traps to quantify the transport of pebbles and ice in protoplanetary discs
- Protoplanetary Disk Chemistry