A Chebyshev method for state-to-state reactive scattering using reactant-product decoupling: OH + H2 → H2O + H

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Abstract

We extend a recently developed wave packet method for computing the state-to-state quantum dynamics of AB + CD → ABC + D reactions [M. T. Cvitaš and S. C. Althorpe, J. Phys. Chem. A 113, 4557 (2009)] to include the Chebyshev propagator. The method uses the further partitioned approach to reactant-product decoupling, which uses artificial decoupling potentials to partition the coordinate space of the reaction into separate reactant, product, and transition-state regions. Separate coordinates and basis sets can then be used that are best adapted to each region. We derive improved Chebyshev partitioning formulas which include Mandelshtam-and-Taylor-type decoupling potentials, and which are essential for the non-unitary discrete variable representations that must be used in 4-atom reactive scattering calculations. Numerical tests on the fully dimensional OH + H2 → H 2O + H reaction for J = 0 show that the new version of the method is as efficient as the previously developed split-operator version. The advantages of the Chebyshev propagator (most notably the ease of parallelization for J > 0) can now be fully exploited in state-to-state reactive scattering calculations on 4-atom reactions. © 2013 AIP Publishing LLC.

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Cvitaš, M. T., & Althorpe, S. C. (2013). A Chebyshev method for state-to-state reactive scattering using reactant-product decoupling: OH + H2 → H2O + H. Journal of Chemical Physics, 139(6). https://doi.org/10.1063/1.4817241

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