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Nonadiabatic reactant-product decoupling calculation for the F(2P1/2)+H2 reaction -: art. no. 134301

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JOURNAL OF CHEMICAL PHYSICS
卷 124, 期 13, 页码 -

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AMER INST PHYSICS
DOI: 10.1063/1.2181985

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In this paper we present a theoretical study using time-dependent nonadiabatic reactant-product decoupling method for the state-to-state reactive scattering calculation of F(P-2(1/2))+H-2 (nu=j=0) reaction on the Alexander-Stark-Werner potential energy surface. In this nonadiabatic state-to-state calculation, the full wave function is partitioned into reactant component and a sum of all product components. The reactant and product components of the wave function are solved independently. For the excited state reaction, the state-to-state reaction probabilities for J=0.5 are calculated. Comparing the state-to-state reaction probabilities, it is found that the vibrational population of the HF product is dominated by vibrational levels nu=2 and 3. The rotation specific reaction probabilities of HF product in j=1 and 2 are larger than those in other rotational levels. As the rotation quantum number j increases, the positions of the peak in the rotational reaction probability of HF product in nu=3 shift to higher collision energy. (c) 2006 American Institute of Physics.

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