4.7 Article

Theoretical study of the multiplet branching of the SD product in the S(1D)+D2→SD(2Π)+D reaction

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 127, Issue 15, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.2790441

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The statistical model of atom-diatom insertion reactions is combined with coupled-states capture theory to calculate integral cross sections for formation of specific rotational/fine-structure states of the SD product of the title reaction. The four electronic potential energy surfaces that correlate with the products ((1,3)A(') and (1,3)A('')) and an accurate description of the electronic and spin-orbit couplings between them have been determined from ab initio calculations. The dependence of the cross sections upon the product rotational quantum number shows a statistical behavior similar to that computed with the simple prior statistical model. We predict a significant preference for formation of the lower (F-1) versus the upper (F-2) spin-orbit manifold but essentially equal A(') and A('') Lambda-doublet populations. The computed SD nu=0 rotational/fine-structure state distribution is in good agreement with the distribution measured experimentally for this reaction by Khachatrian and Dagdigian [J. Chem. Phys. 122, 024303 (2005)]. The calculations predict the F-1: F-2 spin-orbit population ratio to be slightly larger than experimentally observed. (C) 2007 American Institute of Physics.

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