Constraints on the non-thermal desorption of methanol in the cold core LDN 429-C
arXiv:2301.01288 · doi:10.1051/0004-6361/202245157
Abstract
Cold cores are an early step of star formation, characterized by densities > 10 cm, low temperatures (< 15 K), and very low external UV radiation. We investigate the physico-chemical processes at play to tracing the origin of molecules that are predominantly formed via reactions on dust grain surfaces. We observed the cold core LDN 429-C with the NOEMA interferometer and the IRAM 30m single dish telescope in order to obtain the gas-phase abundances of key species, including CO and CHOH. Comparing the observed gas phase of methanol to its solid phase previously observed with Spitzer allows us to put quantitative constraints on the efficiency of the non-thermal desorption of this species. With physical parameters determined from available Herschel data, we computed abundance maps of 11 detected molecules with a non-local thermal equilibrium radiative transfer model. These observations allowed us to probe the molecular abundances as a function of density and visual extinction, with the variation in temperature being restrained between 12 and 18 K. We then compared the observed abundances to the predictions of the Nautilus astrochemical model. We find that all molecules have lower abundances at high densities and visual extinctions with respect to lower density regions, except for methanol. Comparing these observations with a grid of chemical models based on the local physical conditions, we were able to reproduce these observations, allowing only the parameter time to vary. Comparing the observed gas-phase abundance of methanol with previous measurements of the methanol ice, we estimate a non-thermal desorption efficiency between 0.002% and 0.09%, increasing with density. The apparent increase in the desorption efficiency cannot be reproduced by our model unless the yield of cosmic-ray sputtering is altered due to the ice composition varying as a function of density.
References in corpus (23)
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- The 2014 KIDA network for interstellar chemistry
- Astrochemistry During the Formation of Stars
- Binding energies: new values and impact on the efficiency of chemical desorption
- Survey of ortho-H2D+(1_{1,0}-1_{1,1}) in dense cloud cores
- The effect of uncertainties on chemical models of dark clouds
- Cometary ices in forming protoplanetary disc midplanes
- Gas phase Elemental abundances in Molecular cloudS (GEMS). II. On the quest for the sulphur reservoir in molecular clouds: the case
- Efficiency of non-thermal desorptions in cold-core conditions. Testing the sputtering of grain mantles induced by cosmic rays
- ROHSA: Regularized Optimization for Hyper-Spectral Analysis - Application to phase separation of 21 cm data
- Cosmic rays in molecular clouds probed by H rovibrational lines -- Perspectives for the James Webb Space Telescope
- Formation of the Musca filament: Evidence for asymmetries in the accretion flow due to a cloud-cloud collision
- Non-thermal desorption of complex organic molecules: Cosmic-ray sputtering of CH3OH embedded in CO2 ice
- Linking ice and gas in the Serpens low-mass star-forming region
- Distribution of methanol and cyclopropenylidene around starless cores
- Observations of the Onset of Complex Organic Molecule Formation in Interstellar Ices
- Cosmic ray sputtering yield of interstellar ice mantles: CO and CO2 ice thickness dependence
- Water and Methanol Ice in L1544
- A Search for O_2 in CO-depleted Molecular Cloud Cores with Herschel
- Intensity-Corrected Herschel Observations of Nearby Isolated Low-Mass Clouds
- Influence of galactic arm scale dynamics on the molecular composition of the cold and dense ISM II. Molecular oxygen abundance
- Spitzer Observations of L429: A Near-collapse or Collapsing Starless Core
- Chemical compositions of five Planck cold clumps
Cited by in corpus (4)
- Astrochemical models of interstellar ices: History matters
- Gas phase Elemental abundances in Molecular cloudS (GEMS). X. Observational effects of turbulence on the chemistry of molecular clouds
- Chemical constraints on the dynamical evolution of the cold core L694
- Fine-tuning the complex organic molecule formation: sulfur and CO ice as regulators of surface chemistry