Radiative transfer models of mid-infrared H2O lines in the Planet-forming Region of Circumstellar Disks
arXiv:0909.0975 · doi:10.1088/0004-637X/704/2/1471
Abstract
The study of warm molecular gas in the inner regions of protoplanetary disks is of key importance for the study of planet formation and especially for the transport of H2O and organic molecules to the surfaces of rocky planets/satellites. Recent Spitzer observations have shown that the mid-infrared spectra of protoplanetary disks are covered in emission lines due to water and other molecules. Here, we present a non-LTE 2D radiative transfer model of water lines in the 10-36 mum range that can be used to constrain the abundance structure of water vapor, given an observed spectrum, and show that an assumption of local thermodynamic equilibrium (LTE) does not accurately estimate the physical conditions of the water vapor emission zones. By applying the model to published Spitzer spectra we find that: 1) most water lines are subthermally excited, 2) the gas-to-dust ratio must be one to two orders of magnitude higher than the canonical interstellar medium ratio of 100-200, and 3) the gas temperature must be higher than the dust temperature, and 4) the water vapor abundance in the disk surface must be truncated beyond ~ 1 AU. A low efficiency of water formation below ~ 300 K may naturally result in a lower water abundance beyond a certain radius. However, we find that chemistry, may not be sufficient to produce an abundance drop of many orders of magnitude and speculate that the depletion may also be caused by vertical turbulent diffusion of water vapor from the superheated surface to regions below the snow line, where the water can freeze out and be transported to the midplane as part of the general dust settling. Such a vertical cold finger effect is likely to be efficient due to the lack of a replenishment mechanism of large, water-ice coated dust grains to the disk surface.
12 pages, accepted for publication in ApJ
References in corpus (12)
- Radiation thermo-chemical models of protoplanetary disks I. Hydrostatic disk structure and inner rim
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- X-ray irradiated protoplanetary disk atmospheres I: Predicted emission line spectrum and photoevaporation
- Line Emission from Gas in Optically Thick Dust Disks around Young Stars
- Quasi-classical rate coefficient calculations for the rotational (de)excitation of H2O by H2
- Spatial mapping of ices in the Oph-F core: A direct measurement of CO depletion and the formation of CO2
- Formation of Water in the Warm Atmospheres of Protoplanetary Disks
- Two-Dimensional Transport of Solids in Viscous Protoplanetary Disks
- Formation of simple organic molecules in inner T Tauri disks
- A new raytracer for modeling AU-scale imaging of lines from protoplanetary disks
- Line profiles of water for the photon dominated region and embedded sources in the S140 region
- Rotational Line Emission from Water in Protoplanetary Disks
Cited by in corpus (90)
- Protoplanetary Disks and Their Evolution
- Interstellar water chemistry: from laboratory to observations
- Detection of the Water Reservoir in a Forming Planetary System
- Astrochemistry and compositions of planetary systems
- A Spitzer survey of mid-infrared molecular emission from protoplanetary disks I: Detection rates
- A Spitzer Survey of Mid-Infrared Molecular Emission from Protoplanetary Disks II: Correlations and LTE Models
- The molecular composition of the planet-forming regions of protoplanetary disks across the luminosity regime
- Organic Molecules and Water in the Inner Disks of T Tauri Stars
- Transport of CO in Protoplanetary Disks: Consequences of Pebble Formation, Settling, and Radial Drift
- CO rovibrational emission as a probe of inner disk structure
- 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
- A survey of C2H, HCN, and C18O in protoplanetary disks
- Sensitive limits on the abundance of cold water vapor in the DM Tau protoplanetary disk
- Spectrally resolved pure rotational lines of water in protoplanetary disks
- Tracing water vapor and ice during dust growth
- Formation of Organic Molecules and Water in Warm Disk Atmospheres
- Volatile snowlines in embedded disks around low-mass protostars
- Probing stellar accretion with mid-infrared hydrogen lines
- Gas modelling in the disc of HD 163296
- The HCN-Water Ratio in the Planet Formation Region of Disks
- The depletion of water during dispersal of planet-forming disk regions
- Water depletion in the disk atmosphere of Herbig AeBe stars
- First Detection of Near-Infrared Line Emission from Organics in Young Circumstellar Disks
- Ex Lupi from Quiescence to Outburst: Exploring the LTE Approach in Modelling Blended H2O and OH Mid-Infrared Emission
- Chemical evolution of protoplanetary disks - the effects of viscous accretion, turbulent mixing and disk winds
- Detection of warm water vapour in Taurus protoplanetary discs by Herschel
- CO2 infrared emission as a diagnostic of planet-forming regions of disks
- Modelling mid-infrared molecular emission lines from T Tauri stars
- MINDS. Abundant water and varying C/O across the disk of Sz 98 as seen by JWST/MIRI
- Measurements of water surface snow lines in classical protoplanetary disks
- Ro-vibrational excitation of an organic molecule (HCN) in protoplanetary disks
- The determination of protoplanetary disk masses
- The diverse chemistry of protoplanetary disks as revealed by JWST
- An evolutionary study of volatile chemistry in protoplanetary disks
- Herbig Stars' Near-Infrared Excess: An Origin in the Protostellar Disk's Magnetically-Supported Atmosphere
- The Chemical Inventory of the Inner Regions of Planet-forming Disks -- The JWST/MINDS Program
- 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
- Candidate Water Vapor Lines to Locate the HO Snowline through High-Dispersion Spectroscopic Observations II. The Case of a Herbig Ae Star
- Observing Carbon & Oxygen Carriers in Protoplanetary Disks at Mid-infrared Wavelengths
- Physical properties of the first quasars
- Candidate Water Vapor Lines to Locate the HO Snowline through High-Dispersion Spectroscopic Observations I. The Case of a T Tauri Star
- Turbulent-diffusion Mediated CO Depletion in Weakly Turbulent Protoplanetary disks
- Efficiency of radial transport of ices in protoplanetary disks probed with infrared observations: the case of CO
- A new raytracer for modeling AU-scale imaging of lines from protoplanetary disks
- JWST Observations of Young protoStars (JOYS): overview of program and early results
- Multiple paths of deuterium fractionation in protoplanetary disks
- JWST Observations of Young protoStars (JOYS). Overview of gaseous molecular emission and absorption in low-mass protostars
- Steepening of the 820 micron continuum surface-brightness profile signals dust evolution in TW Hya's disk
- Unlocking CO Depletion in Protoplanetary Disks II. Primordial C/H Predictions Inside the CO Snowline
- c2d Spitzer IRS spectra of embedded low-mass young stars: gas-phase emission lines
- Missing water in Class I protostellar disks
- Mid-IR spectra of Pre-Main Sequence Herbig stars: an explanation for the non-detections of water lines
- Rotational quenching of rotationally-excited HO in collisions with He
- Water in Star and Planet Forming Regions
- Probing planet formation and disk substructures in the inner disk of Herbig Ae stars with CO rovibrational emission
- The Evolution of Inner Disk Gas in Transition Disks
- The chemistry of planet-forming regions is not interstellar
- Detection of water vapor in the terrestrial planet forming region of a transition disk
- The nitrogen carrier in protoplanetary disks
- OH mid-infrared emission as a diagnostic of HO UV photodissociation. III. Application to planet-forming disks
- Water UV-shielding in the terrestrial planet-forming zone: Implications for carbon dioxide emission
- Resolved molecular line observations reveal an inherited molecular layer in the young disk around TMC1A
- MINDS. JWST-MIRI reveals a peculiar CO-rich chemistry in the drift-dominated disk CX Tau
- The effects of dust evolution on disks in the mid-IR
- The TW Hya Rosetta Stone Project I: Radial and vertical distributions of DCN and DCO+
- Candidate Water Vapor Lines to Locate the Snowline through High-dispersion Spectroscopic Observations. III. Submillimeter and Lines
- Different degrees of nitrogen and carbon depletion in the warm molecular layers of protoplanetary disks
- FUV Irradiation and the Heat Signature of Accretion in Protoplanetary Disk Atmospheres
- Ice-Coated Pebble Drift as a Possible Explanation for Peculiar Cometary CO/H2O Ratios
- Emission from Water Vapor and Absorption from Other Gases at 5-7.5 Microns in Spitzer-IRS Spectra of Protoplanetary Disks
- A Combined Spitzer and Herschel Infrared Study of Gas and Dust in the Circumbinary Disk Orbiting V4046 Sgr
- CLIcK: a Continuum and Line fItting Kit for circumstellar disks
- Water UV-Shielding in the Terrestrial Planet-Forming Zone: Implications for Oxygen-18 Isotope Anomalies in H2-18O Infrared Emission and Meteorites
- Reimagining the water snowline
- Effect of Different Angular Momentum Transport mechanisms on the Distribution of Water in Protoplanetary Disks
- Understanding JWST water spectra: what can thermochemical models tell us about the (cold) water in protoplanetary disks?
- Mid-infrared blends and continuum signatures of dust drift and accretion in protoplanetary disks
- Gas dynamics around a Jupiter mass planet: II. Chemical evolution of circumplanetary material
- An unusual reservoir of water emission in the VV CrA A protoplanetary disk
- Tracking the Chemical Evolution of Hydrocarbons Through Carbon Grain Supply in Protoplanetary Disks
- Molecules with ALMA at Planet-forming Scales (MAPS). XV. Tracing protoplanetary disk structure within 20 au
- Icy Volatile Enhancements in Evolving Protoplanetary Disks
- Water UV-shielding in the terrestrial planet-forming zone: Implications from water emission
- Comets in context: Comparing comet compositions with protosolar nebula models
- Protoplanetary Disk Chemistry
- Gas chemistry in the dust depleted inner regions of protoplanetary disks. I. Near-IR spectra and overtones
- Molecular Similarity and Water Diversity in Coeval Binary Disks: JWST/MIRI Observations of Sz 65 and Sz 66