Chemistry and Radiative Transfer of Water in Cold, Dense Clouds
arXiv:1403.0155 · doi:10.1093/mnras/stu426
Abstract
The Herschel Space Observatory's recent detections of water vapor in the cold, dense cloud L1544 allow a direct comparison between observations and chemical models for oxygen species in conditions just before star formation. We explain a chemical model for gas phase water, simplified for the limited number of reactions or processes that are active in extreme cold ( 15 K). In this model, water is removed from the gas phase by freezing onto grains and by photodissociation. Water is formed as ice on the surface of dust grains from O and OH and released into the gas phase by photodesorption. The reactions are fast enough with respect to the slow dynamical evolution of L1544 that the gas phase water is in equilibrium for the local conditions thoughout the cloud. We explain the paradoxical radiative transfer of the HO () line. Despite discouragingly high optical depth caused by the large Einstein A coefficient, the subcritical excitation in the cold, rarefied H causes the line brightness to scale linearly with column density. Thus the water line can provide information on the chemical and dynamical processes in the darkest region in the center of a cold, dense cloud. The inverse P-Cygni profile of the observed water line generally indicates a contracting cloud. This profile is reproduced with a dynamical model of slow contraction from unstable quasi-static hydrodynamic equilibrium (an unstable Bonnor-Ebert sphere).
submitted to MNRAS
References in corpus (3)
Cited by in corpus (34)
- The origin of complex organic molecules in prestellar cores
- The Spatial Distribution of Complex Organic Molecules in the L1544 Pre-stellar Core
- Water in star-forming regions (WISH): Physics and chemistry from clouds to disks as probed by Herschel spectroscopy
- Deuterated methanol in the pre-stellar core L1544
- The dynamics of collapsing cores and star formation
- Chemical modelling of complex organic molecules with peptide-like bonds in star-forming regions
- Benchmarking spin-state chemistry in starless core models
- The central 1000 AU of a pre-stellar core revealed with ALMA. I. 1.3 mm continuum observations
- Why does ammonia not freeze out in the center of pre-stellar cores?
- Origins Space Telescope Mission Concept Study Report
- Detection of the HCNH and HCNH ions in the L1544 pre-stellar core
- Isocyanogen formation in the cold interstellar medium
- NH_3(1_0-0_0) in the pre-stellar core L1544
- Combining radiative transfer and diffuse interstellar medium physics to model star formation
- Water in Low-Mass Star-Forming Regions with Herschel: The Link Between Water Gas and Ice in Protostellar Envelopes
- Transmission Electron Microscopy Study of the Morphology of Ices Composed of H2O, CO2, and CO on Refractory Grains
- Detectability of Glycine in Solar-type System Precursors
- Interplay of gas and ice during cloud evolution
- The ortho-to-para ratio of water in interstellar clouds
- Rigorous theory for secondary cosmic-ray ionization
- Multi-line observations of CHOH, c-CH and HNCO towards L1544: Dissecting the core structure with chemical differentiation
- Gravitational instabilities in a protosolar-like disc II: continuum emission and mass estimates
- The mid-infrared molecular inventory towards Orion IRc2
- The Magnetic Field of L1544: I. Near-Infrared Polarimetry and the Non-Uniform Envelope
- Intensity-Corrected Herschel Observations of Nearby Isolated Low-Mass Clouds
- Chemistry and dynamics of the prestellar core L1544
- Species-to-species rate coefficients for the reacting system
- Chemical network reduction in protoplanetary disks
- Density Structure of Centrally Concentrated Prestellar Cores from Multi-scale Observations
- On the probability distribution function of the mass surface density of molecular clouds. II
- Tracing the contraction of the pre-stellar core L1544 with HCO = 1-0 emission
- Origins Space Telescope: From First Light to Life -- ESA Voyage 2050 White Paper
- Neon is an inhibitor of CO hydrogenation in pre-stellar core conditions
- Deuterated forms of H and their importance in astrochemistry