Chemical significance of different temperature regimes for cosmic-ray-induced heating of whole interstellar grains
arXiv:1904.11368 · doi:10.1093/mnras/stz1010
Abstract
Cosmic-ray-induced whole-grain heating induces evaporation and other processes that affect the chemistry of interstellar clouds. With recent data on grain heating frequencies as an input for a modified rate-equation astrochemical model, this study examines, which whole-grain heating temperature regime is the most efficient at altering the chemical composition of gas and ices. Such a question arises because low-temperature heating, albeit less effective at inducing evaporation of adsorbed species, happens much more often than high-temperature grain heating. The model considers a delayed gravitational collapse of a Bonnor-Ebert sphere, followed by a quiescent cloud core stage. It was found that the whole-grain heating regimes can be divided in three classes, depending on their induced physico-chemical effects. Heating to low-temperature thresholds of 27 and 30 K induce desorption of the most volatile of species - N2 and O2 ices, and adsorbed atoms. The medium-temperature thresholds 40, 50, and 60 K allow effective evaporation of CO and CH4, delaying their accumulation in ices. We find that the 40 K threshold is the most effective cosmic-ray induced whole-grain heating regime because its induced evaporation of CO promotes major abundance changes also for other compounds. An important role in grain cooling may be played by molecular nitrogen as the most volatile of the abundant species in the icy mantles. Whole-grain heating determines the sequence of accretion for different molecules on to grain surface, which plays a key role in the synthesis of complex organic molecules.
13 pages, 7 figures, +1 appendix
References in corpus (11)
- Complex Chemistry in Star-Forming Regions: An Expanded Gas-Grain Warm-up Chemical Model
- Formation of methyl formate and other organic species in the warm-up phase of hot molecular cores
- The origin of complex organic molecules in prestellar cores
- Formation of Complex Molecules in Prestellar Cores: a Multilayer Approach
- Desorption From Interstellar Ices
- Nitrogen hydrides in interstellar gas II. Analysis of Herschel/HIFI observations towards W49N and G10.6-0.4 (W31C)
- Grain Surface Reactions in Molecular Clouds: The Effect of Cosmic Rays and Quantum Tunneling
- Monte Carlo simulations of H2 formation on stochastically heated grains
- The effect of selective desorption mechanisms during interstellar ice formation
- Chemical fractionation of deuterium in the protosolar nebula
- Cosmic-ray-induced dissociation and reactions in warm interstellar ices
Cited by in corpus (6)
- Efficiency of non-thermal desorptions in cold-core conditions. Testing the sputtering of grain mantles induced by cosmic rays
- The Role of Radiolysis in the Modelling of CHO Isomers and Dimethyl Ether in Cold Dark Clouds
- The connection between warm carbon chain chemistry and interstellar irradiation of star-forming cores
- Evaporative cooling of icy interstellar grains II. Key parameters
- Evaporative cooling of icy interstellar grains. I. Basic characterization
- The Cosmic-Ray Induced Sputtering Process On Icy Grains