Ex Lupi from Quiescence to Outburst: Exploring the LTE Approach in Modelling Blended H2O and OH Mid-Infrared Emission
arXiv:1111.2697 · doi:10.1088/0004-637X/745/1/90
Abstract
We present a comparison of archival Spitzer spectra of the strongly variable T Tauri EX Lupi, observed before and during its 2008 outburst. We analyze the mid-infrared emission from gas-phase molecules thought to originate in a circumstellar disk. In quiescence the emission shows a forest of H2O lines, highly excited OH lines, and the Q branches of the organics C2H2, HCN, and CO2, similar to the emission observed toward several T Tauri systems. The outburst emission shows instead remarkable changes: H2O and OH line fluxes increase, new OH, H2, and HI transitions are detected, and organics are no longer seen. We adopt a simple model of a single-temperature slab of gas in local thermal equilibrium, a common approach for molecular analyses of Spitzer spectra, and derive the excitation temperature, column density, and emitting area of H2O and OH. We show how model results strongly depend on the selection of emission lines fitted, and that spectrally-resolved observations are essential for a correct interpretation of the molecular emission from disks, particularly in the case of water. Using H2O lines that can be approximated as thermalized to a single temperature, our results are consistent with a column density decrease in outburst while the emitting area of warm gas increases. A rotation diagram analysis suggests that the OH emission can be explained with two temperature components, which remarkably increase in column density in outburst. The relative change of H2O and OH emission suggests a key role for UV radiation in the disk surface chemistry.
17 pages, 11 figures, 5 tables, accepted for publication on ApJ
References in corpus (7)
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- Hipparcos distances of Ophiuchus and Lupus cloud complexes
- Formation of Water in the Warm Atmospheres of Protoplanetary Disks
- Medium-separation binaries do not affect the first steps of planet formation
- The 2008 outburst of EX Lup - silicate crystals in motion
- Discovery of superthermal hydroxyl (OH) in the HH211 outflow
- Molecular line radiative transfer in protoplanetary disks: Monte Carlo simulations versus approximate methods
Cited by in corpus (40)
- 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
- Consistent dust and gas models for protoplanetary disks III. Models for selected objects from the FP7 DIANA project
- An empirical sequence of disk gap opening revealed by rovibrational CO
- The depletion of water during dispersal of planet-forming disk regions
- Survey of cold water lines in protoplanetary disks: indications of systematic volatile depletion
- Chemical tracers of episodic accretion in low-mass protostars
- Highly Variable Extinction and Accretion in the Jet-driving Class I Type Young Star PTF 10nvg (V2492 Cyg, IRAS 20496+4354)
- Measurements of water surface snow lines in classical protoplanetary disks
- Scanning disk rings and winds in CO at 0.01-10 au: a high-resolution -band spectroscopy survey with IRTF-iSHELL
- Warm H2O and OH in the disk around the Herbig star HD 163296
- The kinematics and excitation of infrared water vapor emission from planet-forming disks: results from spectrally-resolved surveys and guidelines for JWST spectra
- JWST/MIRI Spectroscopy of the Disk of the Young Eruptive Star EX Lup in Quiescence
- Candidate Water Vapor Lines to Locate the HO Snowline through High-Dispersion Spectroscopic Observations II. The Case of a Herbig Ae Star
- Candidate Water Vapor Lines to Locate the HO Snowline through High-Dispersion Spectroscopic Observations I. The Case of a T Tauri Star
- A high resolution mid-infrared survey of water emission from protoplanetary disks
- Depletion of molecular gas by an accretion outburst in a protoplanetary disk
- Mid-IR spectra of Pre-Main Sequence Herbig stars: an explanation for the non-detections of water lines
- A "Rosetta Stone" for protoplanetary disks: The synergy of multi-wavelength observations
- The dry and carbon poor inner disk of TW Hya: evidence for a massive icy dust trap
- A UV-to-MIR monitoring of DR Tau: exploring how water vapor in the planet formation region of the disk is affected by stellar accretion variability
- Water UV-shielding in the terrestrial planet-forming zone: Implications for carbon dioxide emission
- Molecular Mapping of DR Tau's Protoplanetary Disk, Envelope, Outflow, and Large-Scale Spiral Arm
- Candidate Water Vapor Lines to Locate the Snowline through High-dispersion Spectroscopic Observations. III. Submillimeter and Lines
- Spectrally Resolved Mid-Infrared Molecular Emission from Protoplanetary Disks and the Chemical Fingerprint of Planetesimal Formation
- Brightness and mass accretion rate evolution during the 2022 burst of EX~Lupi
- Observational Constraints on the Stellar Radiation Field Impinging on Transitional Disk Atmospheres
- CLIcK: a Continuum and Line fItting Kit for circumstellar disks
- ALMA and VLA Observations of EX Lupi in its Quiescent State
- Cold CO gas in the disk of the young eruptive star EX Lup
- Testing the Potential for Radio Variability in Disks around T Tauri Stars with Observations and Chemical Modeling
- Mid-infrared blends and continuum signatures of dust drift and accretion in protoplanetary disks
- Time-resolved protoplanetary disk physics in DQ Tau with JWST
- Probing episodic accretion with chemistry: CALYPSO observations of IRAM 04191+1522. Results from the CALYPSO IRAM-PdBI survey
- Time-dependent response of protoplanetary disk temperature to an FU Ori-type luminosity outburst
- Water UV-shielding in the terrestrial planet-forming zone: Implications from water emission
- Ancillary science with Ariel: Feasibility and scientific potential of young stellar object observations
- Protoplanetary Disk Chemistry