Competition between dissociation and exchange processes: Contrasting dynamical behaviors in collinear H+H2 and He+H+2 collisions
- 15 June 1990
- journal article
- conference paper
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 92 (12) , 7373-7381
- https://doi.org/10.1063/1.458223
Abstract
Dissociative, exchange, and nonreactive collisions of the H+H2 and He+H+2 systems in collinear geometry are examined. The behavior of the two systems is found to differ qualitatively and quantitatively. For H+H2 (v=0), quasiclassical trajectory (QCT) calculations on the Siegbahn–Liu–Truhlar–Horowitz surface show that the dynamic threshold energy (Edyth) for dissociation is twice the energetic threshold (Eeth). For v=1, the elevation of Edyth is slightly less. There is vibrational enhancement of collision induced dissociation (CID) near threshold, but slight vibrational inhibition at higher energies. At energies above that required for dissociation, a second threshold to exchange is observed and the exchange process eventually takes over from dissociation. For He+H+2 (v=0,1), QCT calculations on the McLaughlin–Thompson surface yield Edyth∼Eeth for dissociation, but also show an antithreshold, with the exchange process becoming dominant at a higher energy. There is only vibrational enhancement of the dissociation process in the energy range investigated. The differences in the dynamical behavior of the two systems are analyzed in terms of reactivity band plots and individual trajectories. Examination of the dynamics for different mass combinations on the HeH+2 potential energy surface gives an insight into the kinematic factors governing CID in collinear geometries. We also consider the qualitative and quantitative differences between this collinear study and our earlier three dimensional work on the same systems.Keywords
This publication has 90 references indexed in Scilit:
- Tertiary and general-order collisionsPublished by Elsevier ,2002
- Converged quantum dynamics calculations for the F+H2 reaction on the well-studied M5 potential-energy surfaceThe Journal of Chemical Physics, 1989
- Accurate three-dimensional quantum scattering calculations for F+H2→HF+HThe Journal of Chemical Physics, 1988
- 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
- Energy bands in reactive collisions. I. H+H2 on the collinear SSMK surfaceThe Journal of Chemical Physics, 1976
- Dissociation of vibrationally-rotationally excited I2 (B 3Πou+)The Journal of Chemical Physics, 1973
- Computer Simulation of Some Reactions of Energetic Hydrogen AtomsThe Journal of Chemical Physics, 1972
- Linear Collision of a Classical Harmonic Oscillator with a Particle at High EnergiesThe Journal of Chemical Physics, 1969
- Potential Energy Surface for H3The Journal of Chemical Physics, 1964
- Tertiary and general-order collisions (II)Nuclear Physics, 1960