Benchmark calculations of thermal reaction rates. II. Direct calculation of the flux autocorrelation function for a canonical ensemble
- 1 February 1991
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 94 (3) , 2045-2056
- https://doi.org/10.1063/1.459926
Abstract
The thermal rate coefficient for the benchmark reaction H+H2→H2+H with zero total angular momentum is calculated by an ℒ2 basis-set evaluation of the flux autocorrelation function. This involves the direct evaluation of the thermally averaged flux operator without calculating any state-to-state reaction probabilities. The results are internally converged to 0.1% and agree with the totally independent results of the previous paper to within 0.03%. This confirms that the correlation-function approach is stable enough to converge practical calculations to three or more significant figures, which is adequate for all purposes, and that the calculations of this and the previous paper may be used to test the convergence and accuracy of other methods for calculating canonical-ensemble reaction rates.Keywords
This publication has 35 references indexed in Scilit:
- Benchmark calculations of thermal reaction rates. I. Quantal scattering theoryThe Journal of Chemical Physics, 1991
- Quantum Monte Carlo dynamics: The stationary phase Monte Carlo path integral calculation of finite temperature time correlation functionsThe Journal of Chemical Physics, 1988
- Quantum mechanical algebraic variational methods for inelastic and reactive molecular collisionsThe Journal of Physical Chemistry, 1988
- Quantum flux operators and thermal rate constant: Collinear H+H2The Journal of Chemical Physics, 1988
- On distributed Gaussian bases for simple model multidimensional vibrational problemsThe Journal of Chemical Physics, 1986
- An optimized quadrature scheme for matrix elements over the eigenfunctions of general anharmonic potentialsComputer Physics Communications, 1984
- Functional representation of Liu and Siegbahn’s accurate a b i n i t i o potential energy calculations for H+H2The Journal of Chemical Physics, 1978
- Quantum mechanical transition state theory and a new semiclassical model for reaction rate constantsThe Journal of Chemical Physics, 1974
- Time-Correlation Functions and Transport Coefficients in Statistical MechanicsAnnual Review of Physical Chemistry, 1965
- Tertiary and general-order collisions (II)Nuclear Physics, 1960