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Exploring the Chemical Dynamics of Phenylethynyl Radical (C6H5CC; X2A1) Reactions with Allene (H2CCCH2; X1A1) and Methylacetylene (CH3CCH; X1A1).
Goettl, Shane J; Yang, Zhenghai; Kollotzek, Siegfried; Paul, Dababrata; Kaiser, Ralf I; Somani, Ankit; Portela-Gonzalez, Adrian; Sander, Wolfram; Nikolayev, Anatoliy A; Azyazov, Valeriy N; Mebel, Alexander M.
Afiliação
  • Goettl SJ; Department of Chemistry, University of Hawaii at Ma̅noa, Honolulu, Hawaii 96822, United States.
  • Yang Z; Department of Chemistry, University of Hawaii at Ma̅noa, Honolulu, Hawaii 96822, United States.
  • Kollotzek S; Department of Chemistry, University of Hawaii at Ma̅noa, Honolulu, Hawaii 96822, United States.
  • Paul D; Department of Chemistry, University of Hawaii at Ma̅noa, Honolulu, Hawaii 96822, United States.
  • Kaiser RI; Department of Chemistry, University of Hawaii at Ma̅noa, Honolulu, Hawaii 96822, United States.
  • Somani A; Lehrstuhl für Organische Chemie II, Ruhr-Universität Bochum, Bochum 44801, Germany.
  • Portela-Gonzalez A; Lehrstuhl für Organische Chemie II, Ruhr-Universität Bochum, Bochum 44801, Germany.
  • Sander W; Lehrstuhl für Organische Chemie II, Ruhr-Universität Bochum, Bochum 44801, Germany.
  • Nikolayev AA; Samara National Research University, Samara 443086, Russia.
  • Azyazov VN; Lebedev Physical Institute, Samara 443011, Russia.
  • Mebel AM; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
J Phys Chem A ; 127(27): 5723-5733, 2023 Jul 13.
Article em En | MEDLINE | ID: mdl-37401904
The bimolecular gas-phase reactions of the phenylethynyl radical (C6H5CC, X2A1) with allene (H2CCCH2), allene-d4 (D2CCCD2), and methylacetylene (CH3CCH) were studied under single-collision conditions utilizing the crossed molecular beams technique and merged with electronic structure and statistical calculations. The phenylethynyl radical was found to add without an entrance barrier to the C1 carbon of the allene and methylacetylene reactants, resulting in doublet C11H9 collision complexes with lifetimes longer than their rotational periods. These intermediates underwent unimolecular decomposition via atomic hydrogen loss through tight exit transition states in facile radical addition─hydrogen atom elimination mechanisms forming predominantly 3,4-pentadien-1-yn-1-ylbenzene (C6H5CCCHCCH2) and 1-phenyl-1,3-pentadiyne (C6H5CCCCCH3) in overall exoergic reactions (-110 kJ mol-1 and -130 kJ mol-1) for the phenylethynyl-allene and phenylethynyl-methylacetylene systems, respectively. These barrierless reaction mechanisms mirror those of the ethynyl radical (C2H, X2Σ+) with allene and methylacetylene forming predominantly ethynylallene (HCCCHCCH2) and methyldiacetylene (HCCCCCH3), respectively, suggesting that in the aforementioned reactions the phenyl group acts as a spectator. These molecular mass growth processes are accessible in low-temperature environments such as cold molecular clouds (TMC-1) or Saturn's moon Titan, efficiently incorporating a benzene ring into unsaturated hydrocarbons.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article