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Updated: May 13, 2026

Isolating Free Carbenes, their Mixed Dimers and Organic Radicals
Published on: April 19, 2019
Dissociation of propyl radicals and other reactions on a C3H7 potential
James A Miller1, Stephen J Klippenstein
1Chemical Sciences and Engineering Division, Argonne National Laboratory, 9700 South Cass Avenue, Argonne, Illinois 60439, USA. jamiller@anl.gov
Abstract:
In this article we make theoretical predictions of the thermal rate coefficients for a series of elementary reactions on a C3H7 potential. Perhaps most importantly, we study the association/dissociation reactions for n-C3H7 and i-C3H7 [CH3 + C2H4(+M) ⇄ n-C3H7(+M), C3H6 + H(+M) ⇄ n-C3H7(+M), and C3H6 + H(+M) ⇄ i-C3H7(+M)], where n-C3H7 and i-C3H7 are the propyl radicals and C3H6 is propene. However, in order to provide more information for our kinetic model, we have also included analyses of the association/elimination reaction [C3H6 + H ⇄ CH3 + C2H4] and the abstraction reactions [C3H6 + H ⇄ CH2CHCH2 + H2, C3H6 + H ⇄ CH3CCH2 + H2, C3H6 + H ⇄ CH3CHCH + H2, and CH3 + C2H4 ⇄ CH4 + C2H3]. The theory employs high-level electronic-structure methods to characterize the potential energy surface, conventional transition-state theory to calculate k(T) for the abstraction reactions, RRKM theory to calculate microcanonical, J-resolved rate coefficients for the dissociation processes, and master-equation methods to determine phenomenological rate coefficients k(T,p), for all of the nonabstraction reactions. The agreement between our theory and the experimental results available is remarkably good. The final results are cast in a form that is convenient for chemical kinetics modeling.
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