Hydrogenation of acetaldehyde on interstellar ice analogs reveals limited destruction
arXiv:2412.17529 · doi:10.1051/0004-6361/202451990
Abstract
We sought to determine which are the main hydrogenation paths of acetaldehyde (CH3CHO). As a partially unsaturated molecule, CH3CHO can have links with more hydrogenated species, like ethanol (C2H5OH) or with more unsaturated ones, like ketene (H2CCO). We used highly accurate quantum chemical calculations to determine the reaction rate constants for the CH3CHO + H/D reaction. Our theoretical results are confronted against our experiments on the hydrogenation and deuteration of CH3CHO ice. We find that acetaldehyde resists hydrogenation, with only a 10\% of conversion to products different than CH3CHO. This is due to a predominance of H-abstraction at the HCO moiety, with reaction rate constants up to four orders of magnitude higher than the next possible reaction channel, that is hydrogenation at the aldehydic carbon. The formed CH3CO radical experiences barrierless or nearly barrierless reactions in all possible reaction positions, reforming CH3CHO and creating a closed loop that protects the molecule against hydrogenation. We constrain the branching ratios for the second reaction from experiments. Our experiments agree with the calculations and from the combination of both we can explain the presence of H2CCO, CO, CH4, C2H5OH, H2CO or CH3OH as minor products at the end of the reaction. We provide recommendations for future modeling efforts. Our results show limited destruction of acetaldehyde, reinforcing the vision of this molecule as an abundant and resilient COM. From the experiments, we are not able to observe the reactive desorption of this molecule. Our results align with other modeling works, showing that the link between CH3CHO and C2H5OH is not direct. Finally, our results can explain the excess of CH3CDO found in prestellar cores.
Accepted for publication in Astronomy and Astrophysics
References in corpus (33)
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- Complex organic molecules in protoplanetary disks
- The Spatial Distribution of Complex Organic Molecules in the L1544 Pre-stellar Core
- Formation of complex organic molecules in hot molecular cores through nondiffusive grain-surface and ice-mantle chemistry
- Formation of Complex Organic Molecules in Cold Interstellar Environments through non-diffusive grain-surface and ice-mantle chemistry
- Gas-grain chemistry in cold interstellar cloud cores with a microscopic Monte Carlo approach to surface chemistry
- Discovery of a Hot Corino in the Bok Globule B335
- H-atom bombardment of CO2, HCOOH and CH3CHO containing ices
- An experimental study of the surface formation of methane in interstellar molecular clouds
- Formation of COMs through CO hydrogenation on interstellar grains
- Quantum mechanical simulations of the radical-radical chemistry on icy surfaces
- Astrochemistry at work in the L1157-B1 shock: acetaldehyde formation
- Gas-phase formation of acetaldehyde: review and new theoretical computations
- Atom Tunneling in the Water Formation Reaction H + OH HO + H on an Ice Surface
- Hydrogenation of accreting C-atoms and CO molecules -- simulating ketene and acetaldehyde formation under dark and translucent cloud conditions
- The complex organic molecular content in the L1498 starless core
- Tunneling Rate Constants for H2CO+H on Amorphous Solid Water Surfaces
- Detection of Complex Organic Molecules in Young Starless Core L1521E
- Tunneling Reaction Kinetics for the Hydrogen Abstraction Reaction H + HS -> H + HS in the Interstellar Medium
- Formation of complex organic molecules on interstellar CO ices? Insights from computational chemistry simulations
- Formation of Acetaldehyde on CO-rich Ices
- The complex organic molecular content in the L1517B starless core
- Influence of surface and bulk water ice on the reactivity of a water-forming reaction
- Acetaldehyde binding energies: a coupled experimental and theoretical study
- Radical Addition and H Abstraction Reactions in C2H2, C2H4 and C2H6: A Gateway for Ethyl and Vinyl Bearing Molecules in the Interstellar Medium
- Methane formation in cold regions from carbon atoms and molecular hydrogen
- Ethylene oxide and Acetaldehyde in hot cores
- Is there any linkage between interstellar aldehyde and alcohol?
- Hydrogen abstraction reactions in formic and thioformic acid isomers by hydrogen and deuterium atoms. Insights on isomerism and deuteration
- Hydrogenation of small aromatic heterocycles at low temperatures
- Enhanced formation of interstellar complex organic molecules on carbon monoxide ice
- Millimetre and sub-millimetre spectroscopy of doubly deuterated acetaldehyde (CHD2CHO) and first detection towards IRAS 16293-2422
- Processing of hydroxylamine, NH2OH, an important prebiotic precursor, on interstellar ices