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  • 1
    Online Resource
    Online Resource
    Oxford University Press (OUP) ; 2023
    In:  Monthly Notices of the Royal Astronomical Society Vol. 522, No. 4 ( 2023-05-11), p. 5254-5266
    In: Monthly Notices of the Royal Astronomical Society, Oxford University Press (OUP), Vol. 522, No. 4 ( 2023-05-11), p. 5254-5266
    Abstract: Both linear and branched isomers of propyl cyanide (PrCN; C3H7CN) are ubiquitous in interstellar space. To date, PrCN is one of the most complex molecules found in the interstellar medium. Furthermore, it is the only one observed species to share the branched atomic backbone of amino acids, some of the building blocks of life. Radical–radical chemical reactions are examined in detail using density functional theory, ab initio methods, and the energy resolved master equation formalism to compute rate constants at a low pressure value prevalent in the ISM. Quantum chemical studies are reported for both isomers considering two possibilities: the gas phase association and the surface reactions of radicals on a 34-water amorphous ice model. The reaction mechanism involves the following radicals association: CH3CHCH3 + CN, CH3 + CH3CHCN and CH3CH2 + CH2CN, CH3 + CH2CH2CN, CN + CH3CH2CH2 for iso-PrCN and n-PrCN formation, respectively. Two DFT methods: M062X and ωB97XD with the 6-311++G(d,p) basis set were tested for reactions in gas phase and on the ice mantle. In the gas phase, MP2/aug-cc-pVTZ level of theory is also used, and the energetics of the five reactions are calculated using explicitly correlated coupled cluster (CCSD(T)-F12) method. All reaction paths are exoergic and barrierless in the gas phase and on the ice-model, suggesting that the formation of iso-PrCN and n-PrCN is efficient on the ice model adopted in this paper. The gas phase rate constants of formation of both isomers can be eventually used as a high limit for the solid state reactions.
    Type of Medium: Online Resource
    ISSN: 0035-8711 , 1365-2966
    Language: English
    Publisher: Oxford University Press (OUP)
    Publication Date: 2023
    detail.hit.zdb_id: 2016084-7
    SSG: 16,12
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  • 2
    Online Resource
    Online Resource
    Royal Society of Chemistry (RSC) ; 2022
    In:  RSC Advances Vol. 12, No. 29 ( 2022), p. 18994-19005
    In: RSC Advances, Royal Society of Chemistry (RSC), Vol. 12, No. 29 ( 2022), p. 18994-19005
    Abstract: Acetaldehyde (CH 3 CHO) is ubiquitous in interstellar space and is important for astrochemistry as it can contribute to the formation of amino acids through reaction with nitrogen containing chemical species. Quantum chemical and reaction kinetics studies are reported for acetaldehyde formation from the chemical reaction of C( 3 P) with a methanol molecule adsorbed at the eighth position of a cubic water cluster. We present extensive quantum chemical calculations for total spin S = 1 and S = 0. The UωB97XD/6-311++G(2d,p) model chemistry is employed to optimize the structures, compute minimum energy paths and zero-point vibrational energies of all reaction steps. For the optimized structures, the calculated energies are refined by CCSD(T) single point computations. We identify four transition states on the triplet potential energy surface (PES), and one on the singlet PES. The reaction mechanism involves the intermediate formation of CH 3 OCH adsorbed on the ice cluster. The rate limiting step for forming acetaldehyde is the C–O bond breaking in CH 3 OCH to form adsorbed CH 3 and HCO. We find two positions on the reaction path where spin crossing may be possible such that acetaldehyde can form in its singlet spin state. Using variational transition-state theory with multidimensional tunnelling we provide thermal rate constants for the energetically rate limiting step for both spin states and discuss two routes to acetaldehyde formation. As expected, quantum effects are important at low temperatures.
    Type of Medium: Online Resource
    ISSN: 2046-2069
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2022
    detail.hit.zdb_id: 2623224-8
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