Prediction of absolute rate coefficients and product branching ratios for the C(P-3) plus allene reaction system
Data(s) |
01/10/2002
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Resumo |
Complex chemical reactions in the gas phase can be decomposed into a network of elementary (e.g., unimolecular and bimolecular) steps which may involve multiple reactant channels, multiple intermediates, and multiple products. The modeling of such reactions involves describing the molecular species and their transformation by reaction at a detailed level. Here we focus on a detailed modeling of the C(P-3)+allene (C3H4) reaction, for which molecular beam experiments and theoretical calculations have previously been performed. In our previous calculations, product branching ratios for a nonrotating isomerizing unimolecular system were predicted. We extend the previous calculations to predict absolute unimolecular rate coefficients and branching ratios using microcanonical variational transition state theory (mu-VTST) with full energy and angular momentum resolution. Our calculation of the initial capture rate is facilitated by systematic ab initio potential energy surface calculations that describe the interaction potential between carbon and allene as a function of the angle of attack. Furthermore, the chemical kinetic scheme is enhanced to explicitly treat the entrance channels in terms of a predicted overall input flux and also to allow for the possibility of redissociation via the entrance channels. Thus, the computation of total bimolecular reaction rates and partial capture rates is now possible. (C) 2002 American Institute of Physics. |
Identificador | |
Idioma(s) |
eng |
Publicador |
American Institute of Physics |
Palavras-Chave | #Physics, Atomic, Molecular & Chemical #Transition-state Theory #Intermolecular Energy-transfer #Channel Unimolecular Reactions #Master Equation Analysis #Crossed-beam Reaction #Multiple-well #Hydrocarbon Molecules #Chemical-dynamics #N-c4h3 Formation #Nh2+no Reaction #C1 #250603 Reaction Kinetics and Dynamics #780102 Physical sciences #0399 Other Chemical Sciences |
Tipo |
Journal Article |