Gas-phase Elemental abundances in Molecular cloudS (GEMS) III. Unlocking the CS chemistry: the CS+O reaction
arXiv:2012.10176 · doi:10.1051/0004-6361/202039611
Abstract
CS is among the most abundant gas-phase S-bearing molecules in cold dark molecular clouds. It is easily observable with several transitions in the millimeter wavelength range, and has been widely used as a tracer of the gas density in the interstellar medium in our Galaxy and external galaxies. Chemical models fail to account for the observed CS abundances when assuming the cosmic value for the elemental abundance of sulfur. The CS+O -> CO + S reaction has been proposed as a relevant CS destruction mechanism at low temperatures, and could explain the discrepancy between models and observations. Its reaction rate has been experimentally measured at temperatures of 150-400 K, but the extrapolation to lower temperatures is doubtful. Here we calculate the CS+O reaction rate at temperatures <150 K which are prevailing in the interstellar medium. We performed ab initio calculations to obtain the three lowest PES of the CS+O system. These PESs are used to study the reaction dynamics, using several methods to eventually calculate the CS+O thermal reaction rates. We compare the results of our theoretical calculations for 150-400 K with those obtained in the laboratory. Our detailed theoretical study on the CS+O reaction, which is in agreement with the experimental data obtained at 150-400 K, demonstrates the reliability of our approach. After a careful analysis at lower temperatures, we find that the rate constant at 10 K is negligible, which is consistent with the extrapolation of experimental data using the Arrhenius expression. We use the updated chemical network to model the sulfur chemistry in TMC1 based on molecular abundances determined from GEMS project observations. In our model, we take into account the expected decrease of the cosmic ray ionization rate along the cloud. The abundance of CS is still overestimated when assuming the cosmic value for the sulfur abundance.
11 pages, 10 figures, accepted in Astronomy & Astrophysics
References in corpus (14)
- Modeling Sulfur Depletion in Interstellar Clouds
- Low sulfur depletion in the Horsehead PDR
- Chemical Reaction Rates from Ring Polymer Molecular Dynamics: Theory and Practical Applications
- A New Reference Chemical Composition for TMC-1
- Sulphur-bearing molecules in diffuse molecular clouds: new results from SOFIA/GREAT and the IRAM 30 m telescope
- Sulfur chemistry in protoplanetary disks: CS and H2CS
- Efficient Production of S in Interstellar Ices: The effects of cosmic ray-driven radiation chemistry and non-diffusive bulk reactions
- Gas phase Elemental abundances in Molecular cloudS (GEMS). II. On the quest for the sulphur reservoir in molecular clouds: the case
- Modelling the sulphur chemistry evolution in Orion KL
- A new look at sulphur chemistry in hot cores and corinos
- Sulphur chemistry and molecular shocks: the case of NGC1333-IRAS2
- H2S in the L1157-B1 Bow shock
- Chemical segregation in the young protostars Barnard 1b-N and S: evidence of pseudo-disk rotation in Barnard 1b-S
- Mapping CS in Starburst Galaxies: Disentangling and Characterising Dense Gas
Cited by in corpus (11)
- TMC-1, the starless core sulfur factory: Discovery of NCS, HCCS, H2CCS, H2CCCS, and C4S and detection of C5S
- The sulphur saga in TMC-1: Discovery of HCSCN and HCSCCH
- Discovery of thiofulminic acid with the QUIJOTE line survey: A study of the isomers of HNCS and HNCO in TMC-1
- Evolutionary view through the starless cores in Taurus: deuteration in TMC 1-C and TMC 1-CP
- HS observations in young stellar disks in Taurus
- Probing the kinematics and chemistry of the hot core Mon R 2 IRS 3 using ALMA observations
- Chemical compositions of five Planck cold clumps
- The initial magnetic criticality of prestellar cores
- Evolution of Chemistry in the envelope of Hot Corinos (ECHOS). I. Extremely young sulphur chemistry in the isolated Class 0 object B335
- Chemical variations across the TMC-1 boundary: molecular tracers from translucent phase to dense phase
- Gas phase Elemental abundances in Molecular cloudS (GEMS). X. Observational effects of turbulence on the chemistry of molecular clouds