c2d Spitzer IRS Spectra of Disks around T Tauri Stars. III. [Ne II], [Fe I], and H_2 gas-phase lines
arXiv:0704.2305 · doi:10.1086/518931
Abstract
We present a survey of mid-infrared gas-phase lines toward a sample of 76 circumstellar disks around low mass pre-main sequence stars from the Spitzer "Cores to Disks" legacy program. We report the first detections of [Ne II] and [Fe I] toward classical T Tauri stars in ~20% respectively ~9% of our sources. The observed [Ne II] line fluxes and upper limits are consistent with [Ne II] excitation in an X-ray irradiated disk around stars with X-ray luminosities L_X=10^{29}-10^{31} erg s^{-1}. [Fe I] is detected at ~10^-5-10^-4 L_Sun, but no [S I] or [Fe II] is detected down to ~10^{-6} L_Sun. The [Fe I] detections indicate the presence of gas-rich disks with masses of >~0.1 M_J. No H_2 0-0 S(0) and S(1) disk emission is detected, except for S(1) toward one source. These data give upper limits on the warm (T~100-200K) gas mass of a few Jovian masses, consistent with recent T Tauri disk models which include gas heating by stellar radiation. Compact disk emission of hot (T>~500K) gas is observed through the H_2 0-0 S(2) and/or S(3) lines toward ~8% of our sources. The line fluxes are, however, higher by more than an order of magnitude than those predicted by recent disk models, even when X-ray and excess UV radiation are included. Similarly the [Ne II]/H_2 0-0 S(2) ratios for these sources are lower than predicted, consistent with the presence of an additional hot molecular gas component not included in current disk models. Oblique shocks of stellar winds interacting with the disk can explain many aspects of the hot gas emission, but are inconsistent with the non-detection of [S I] and [Fe II] lines.
Accepted for publication in ApJ. 19 pages, 11 figures, and 4 tables, f7,f10a, f11a, and f11b replaced with slightly modified versions
References in corpus (13)
- Photoevaporation of protoplanetary discs I: hydrodynamic models
- Probing T Tauri Accretion and Outflow with 1 Micron Spectroscopy
- X-ray Emission from T Tauri Stars and the Role of Accretion: Inferences from the XMM-Newton Extended Survey of the Taurus Molecular Cloud
- Formation and Evolution of Planetary Systems: Upper Limits to the Gas Mass in Disks Around Sun-like Stars
- Neon Fine-Structure Line Emission By X-ray Irradiated Protoplanetary Disks
- Mid-Infrared Spectroscopy of Disks around Classical T Tauri Stars
- Neon Abundances in B-Stars of the Orion Association: Solving the Solar Model Problem?
- Young, Low-Mass Brown Dwarfs with Mid-Infrared Excesses
- Dust Processing in Disks around T Tauri Stars
- Chemistry and line emission from evolving Herbig Ae disks
- Modeling the gas-phase chemistry of the transitional disk around HD 141569A
- Analysis of the dust evolution in the circumstellar disks of TTauri stars
- Deep Spitzer spectroscopy of the `Flying Saucer' edge-on disk: Large grains beyond 50 AU
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