Abstract
We report the first results of ab initio multiconfigurational Ehrenfest simulations of pyrrole photodynamics. We note that, in addition to the two intersections of 11A2 and 11B1 states with the ground state 11A1, which are known to be responsible for N-H bond fission, another intersection between the 1 2A2 and 12B1 states of the resulting molecular radical becomes important after the departure of the H atom. This intersection, which is effectively between the two lowest electronic states of the pyrrolyl radical, may play a significant role in explaining the branching ratio between the two states observed experimentally. The exchange of population between the two states of pyrrolyl occurs on a longer scale than that of N-H bond fission. © 2013 The Owner Societies.
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CITATION STYLE
Saita, K., Nix, M. G. D., & Shalashilin, D. V. (2013). Simulation of ultrafast photodynamics of pyrrole with a multiconfigurational Ehrenfest method. Physical Chemistry Chemical Physics, 15(38), 16227–16235. https://doi.org/10.1039/c3cp51199e
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