Distribution of Water Vapor in Molecular Clouds
arXiv:1011.3260 · doi:10.1088/0004-637X/727/1/13
Abstract
We report the results of a large-area study of water vapor along the Orion Molecular Cloud ridge, the purpose of which was to determine the depth-dependent distribution of gas-phase water in dense molecular clouds. We find that the water vapor measured toward 77 spatial positions along the face-on Orion ridge, excluding positions surrounding the outflow associated with BN/KL and IRc2, display integrated intensities that correlate strongly with known cloud surface tracers such as CN, C2H, 13CO J =5-4, and HCN, and less well with the volume tracer N2H+. Moreover, at total column densities corresponding to Av < 15 mag., the ratio of H2O to C18O integrated intensities shows a clear rise approaching the cloud surface. We show that this behavior cannot be accounted for by either optical depth or excitation effects, but suggests that gas-phase water abundances fall at large Av. These results are important as they affect measures of the true water-vapor abundance in molecular clouds by highlighting the limitations of comparing measured water vapor column densities with such traditional cloud tracers as 13CO or C18O. These results also support cloud models that incorporate freeze-out of molecules as a critical component in determining the depth-dependent abundance of water vapor.
References in corpus (12)
- A computer program for fast non-LTE analysis of interstellar line spectra
- Water, O2 and Ice in Molecular Clouds
- CO Isotopologues in the Perseus Molecular Cloud Complex: the X-Factor and Regional Variations
- The relation between gas and dust in the Taurus Molecular Cloud
- Quasi-classical rate coefficient calculations for the rotational (de)excitation of H2O by H2
- Spitzer spectral line mapping of supernova remnants: I. Basic data and principal component analysis
- The Thermal Structure of Gas in Pre-Stellar Cores: A Case Study of Barnard 68
- Chemical differentiation in regions of high mass star formation II. Molecular multiline and dust continuum studies of selected objects
- SWAS Observations of Water in Molecular Outflows
- Detection of Extended Hot Water in the Outflow from NGC 2071
- The interpretation of water emission from dense interstellar clouds
- Fully Sampled Maps of Ices and Silicates in Front of Cepheus A East with Spitzer
Cited by in corpus (15)
- Water in star-forming regions (WISH): Physics and chemistry from clouds to disks as probed by Herschel spectroscopy
- Molecular Line Emission as a Tool for Galaxy Observations (LEGO). I. HCN as a tracer of moderate gas densities in molecular clouds and galaxies
- The observed chemical structure of L1544
- Massive Quiescent Cores in Orion: Dynamical State Revealed by High-Resolution Ammonia Maps
- Dissecting the molecular structure of the Orion B cloud: Insight from Principal Component Analysis
- Kinetic temperature of massive star-forming molecular clumps measured with formaldehyde. III. The Orion Molecular Cloud 1
- Water in Star and Planet Forming Regions
- A non-equilibrium ortho-to-para ratio of water in the Orion PDR
- Physical Conditions and Kinematics of the Filamentary Structure in Orion Molecular Cloud 1
- The ionization fraction in OMC-2 and OMC-3
- Distribution of Water Vapor in Molecular Clouds. II
- High spectral resolution observations toward Orion BN at 6 m: no evidence for hot water
- Water abundance in four of the brightest water sources in the southern sky
- Weak, extended water vapor emission in the Horsehead nebula
- Testing a New Star Formation History Model from Principal Component Analysis to Facilitate Spectral Synthesis Modeling