A high resolution mid-infrared survey of water emission from protoplanetary disks
arXiv:1902.02708 · doi:10.3847/1538-4357/ab05c3
Abstract
We present the largest survey of spectrally resolved mid-infrared water emission to date, with spectra for 11 disks obtained with the Michelle and TEXES spectrographs on Gemini North. Water emission is detected in 6 of 8 disks around classical T Tauri stars. Water emission is not detected in the transitional disks SR 24 N and SR 24 S, in spite of SR 24 S having pre-transitional disk properties like DoAr 44, which does show water emission (Salyk et al. 2015). With R~100,000, the TEXES water spectra have the highest spectral resolution possible at this time, and allow for detailed lineshape analysis. We find that the mid-IR water emission lines are similar to the "narrow component" in CO rovibrational emission (Banzatti & Pontoppidan 2015), consistent with disk radii of a few AU. The emission lines are either single peaked, or consistent with a double peak. Single-peaked emission lines cannot be produced with a Keplerian disk model, and may suggest that water participates in the disk winds proposed to explain single-peaked CO emission lines (Bast et al. 2011, Pontoppidan et al. 2011). Double-peaked emission lines can be used to determine the radius at which the line emission luminosity drops off. For HL Tau, the lower limit on this measured dropoff radius is consistent with the 13 AU dark ring (ALMA partnership et al. 2015). We also report variable line/continuum ratios from the disks around DR Tau and RW Aur, which we attribute to continuum changes and line flux changes, respectively. The reduction in RW Aur line flux corresponds with an observed dimming at visible wavelengths (Rodriguez et al. 2013).
To appear in the Astrophysical Journal
References in corpus (14)
- The Gaia mission
- Protoplanetary Disk Structures in Ophiuchus
- Accretion in the Rho-Oph pre-main sequence stars
- Evidence of fast pebble growth near condensation fronts in the HL Tau protoplanetary disk
- Structure and evolution of pre-main sequence circumstellar disks
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- Probing T Tauri Accretion and Outflow with 1 Micron Spectroscopy
- Tracing Slow Winds from T Tauri Stars via Low Velocity Forbidden Line Emission
- Dust Density Distribution and Imaging Analysis of Different Ice Lines in Protoplanetary Disks
- CASSIS: The Cornell Atlas of Spitzer/Infrared Spectrograph Sources. II. High-resolution observations
- A tidal encounter caught in the act: modelling a star-disc fly-by in the young RW Aurigae system
- Probing stellar accretion with mid-infrared hydrogen lines
- The depletion of water during dispersal of planet-forming disk regions
- Strongly misaligned triple system in SR 24 revealed by ALMA
Cited by in corpus (16)
- Water in star-forming regions (WISH): Physics and chemistry from clouds to disks as probed by Herschel spectroscopy
- Scanning disk rings and winds in CO at 0.01-10 au: a high-resolution -band spectroscopy survey with IRTF-iSHELL
- Chemically tracing the water snowline in protoplanetary disks with HCO
- The kinematics and excitation of infrared water vapor emission from planet-forming disks: results from spectrally-resolved surveys and guidelines for JWST spectra
- Dust continuum emission and the upper limit fluxes of sub-millimeter water lines of the protoplanetary disk around HD 163296 observed by ALMA
- OH mid-infrared emission as a diagnostic of HO UV photodissociation. III. Application to planet-forming disks
- Signs of late infall and possible planet formation around DR Tau using VLT/SPHERE and LBTI/LMIRCam
- Resolved ALMA observations of water in the inner astronomical units of the HL Tau disk
- Reimagining the water snowline
- The solar abundance problem and eMSTOs in clusters
- We Drink Good 4.5-Billion-Year-Old Water
- An unusual reservoir of water emission in the VV CrA A protoplanetary disk
- Gas kinematics of key prebiotic molecules in GV Tau N revealed with an ALMA, PdBI, and Herschel synergy
- Zooming into the water snowline: high resolution water observations of the HL Tau disk
- Linking Outer Disk Pebble Dynamics and Gaps to Inner Disk Water Enrichment
- Protoplanetary Disk Chemistry