Journal of Physical Chemistry A, Vol.111, No.39, 9654-9661, 2007
Role of the C-H stretch mode excitation in the dynamics of the Cl+CHD3 reaction: A quasi-classical trajectory calculation
To analyze the effect of the C-H stretch mode excitation on the dynamics of the C-1 + CHD3 gas-phase abstraction reaction, an exhaustive state-to-state dynamics study was performed. This reaction can evolve along two channels: H-abstraction, CD3 + CIH, and D-abstraction, CHD2 + CID. On an analytical potential energy surface constructed previously by our group, named PES-2005, quasi-classical trajectory calculations were performed at a collision energy of 0. 18 eV, including corrections to avoid zero-point energy leakage along the trajectories. First, strong coupling between different vibrational modes in the entry valley was observed; i.e., the reaction is vibrationally nonadiabatic. Second, for the ground-state CHD3(v=O) reaction, the diatomic fragments appeared in their ground states, and the H- and D-abstraction reactions showed similar reactivities. However, when the reactivity per atom is considered, the H is three times more reactive than the D atom. Third, when the C-H stretch mode is excited by one quantum, CHD3(v(1)=1), the H-abstraction is strongly favored, and the C-H stretch excitation is maintained in the product CHD2(v(1)=1) + CID channel; i.e., the reaction shows mode selectivity, reproducing the experimental evidence, and also the reactivity of the vibrational ground state is increased, in agreement with experiment. Fourth, the state-to-state angular distributions of the CD3 and CHD2 products showed the products to be practically sideways for the reactant ground state, while the C-H excitation yielded a more forward scattering, reproducing the experimental data. The role of the zero-point energy correction was also analyzed, and we find that the dynamics results are very sensitive on how the ZPE issue is treated. Finally, a comparison is made with the similar H + CHD3(v(1)=0,1) and Cl + CH4(v(1)=0,1) reactions.