Deuterium enrichment of the interstellar grain mantle

被引:25
|
作者
Das, Ankan [1 ]
Sahu, Dipen [1 ]
Majumdar, Liton [1 ,2 ,3 ]
Chakrabarti, Sandip K. [1 ,4 ]
机构
[1] Indian Ctr Space Phys, Kolkata 700084, India
[2] Univ Bordeaux, LAB, UMR 5804, F-33270 Floirac, France
[3] CNRS, LAB, UMR 5804, F-33270 Floirac, France
[4] SN Bose Natl Ctr Basic Sci, Kolkata 700098, India
关键词
astrochemistry; ISM: abundances; dust; extinction; ISM: molecules; MOLECULAR-HYDROGEN FORMATION; DEUTERATED ISOTOPOMERS; CHEMICAL EVOLUTION; INNER REGIONS; DUST GRAINS; METHANOL; WATER; CHEMISTRY; SIMULATION; RELEVANT;
D O I
10.1093/mnras/stv2264
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We carry out Monte Carlo simulation to study deuterium enrichments of interstellar grain mantles under various physical conditions. Based on the physical properties, various types of clouds are considered. We find that in diffuse cloud regions, very strong radiation fields persists and hardly a few layers of surface species are formed. In translucent cloud regions with a moderate radiation field, significant number of layers would be produced and surface coverage is mainly dominated by photo-dissociation products such as, C, CH3, CH2D, OH and OD. In the intermediate dense cloud regions (having number density of total hydrogen nuclei in all forms similar to 2 x 10(4) cm(-3)), water and methanol along with their deuterated derivatives are efficiently formed. For much higher density regions (similar to 10(6) cm(-3)), water and methanol productions are suppressed but surface coverages of CO, CO2, O-2 and O-3 are dramatically increased. We find a very high degree of fractionation of water and methanol. Observational results support a high fractionation of methanol but surprisingly water fractionation is found to be low. This is in contradiction with our model results indicating alternative routes for de-fractionation of water. Effects of various types of energy barriers are also studied. Moreover, we allow grain mantles to interact with various charged particles (such as H+, Fe+, S+ and C+) to study the stopping power and projected range of these charged particles on various target ices.
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页码:540 / 551
页数:12
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