Carbon Isotope Fractionation of Complex Organic Molecules in Star-Forming Cores
arXiv:2406.02961 · doi:10.3847/1538-4357/ad47ba
Abstract
Recent high-resolution and sensitivity ALMA observations have unveiled the carbon isotope ratios (C/C) of Complex Organic Molecules (COMs) in a low-mass protostellar source. To understand the C/C ratios of COMs, we investigated the carbon isotope fractionation of COMs from prestellar cores to protostellar cores with a gas-grain chemical network model. We confirmed that the C/C ratios of small molecules are bimodal in the prestellar phase: CO and species formed from CO (e.g., CHOH) are slightly enriched in C compared to the local ISM (by 10 ), while those from C and C are depleted in C owing to isotope exchange reactions. COMs are mainly formed on the grain surface and in the hot gas ( 100 K) in the protostellar phase. The C/C ratios of COMs depend on which molecules the COMs are formed from. In our base model, some COMs in the hot gas are depleted in C compared to the observations. Thus, We additionally incorporate reactions between gaseous atomic C and HO ice or CO ice on the grain surface to form HCO ice or \ce{C2O} ice, as suggested by recent laboratory studies. The direct C-atom addition reactions open pathways to form \ce{^13C}-enriched COMs from atomic C and CO ice. We find that these direct C-atom addition reactions mitigate C-depletion of COMs, and the model with the direct C-atom addition reactions better reproduces the observations than our base model. We also discuss the impact of the cosmic ray ionization rate on the C/C ratio of COMs.
References in corpus (15)
- Formation of methyl formate and other organic species in the warm-up phase of hot molecular cores
- The ALMA Protostellar Interferometric Line Survey (PILS): First results from an unbiased submillimeter wavelength line survey of the Class 0 protostellar binary IRAS 16293-2422 with ALMA
- Molecular Evolution and Star Formation: From Prestellar Cores to Protostellar Cores
- Modeling Complex Organic Molecules in dense regions: Eley-Rideal and complex induced reaction
- Formation of Complex Organic Molecules in Cold Interstellar Environments through non-diffusive grain-surface and ice-mantle chemistry
- Isotopic fractionation of carbon, deuterium and nitrogen : a full chemical study
- Discovery of interstellar ketenyl (HCCO), a surprisingly abundant radical
- Carbon isotopic fractionation in molecular clouds
- Chemical Variation among Protostellar Cores: Dependence on Prestellar Core Conditions
- Carbon Atom Reactivity with Amorphous Solid Water: HO Catalyzed Formation of HCO
- Chemical modeling of water deuteration in IRAS16293-2422
- Surface Diffusion of Carbon Atoms as a Driver of Interstellar Organic Chemistry
- Gas-grain model of carbon fractionation in dense molecular clouds
- A New "Non-energetic" Route to Complex Organic Molecules in Astrophysical Environments: The C + HO HCO Solid-state Reaction
- Combined model for , , and spin-state chemistry in molecular clouds