Trajectory study of O+H2 reactions on fitted a b i n i t i o surfaces I: Triplet case
- 1 June 1979
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 70 (11) , 4893-4902
- https://doi.org/10.1063/1.437368
Abstract
Classical trajectory calculations of cross sections for the reaction 0(3 P)+H2(1Σ+ g ; ν, j) →OH(2Π; ν′, j′)+H(2 S) have been performed for collision energies 1 kcal/mol⩽E⩽40 kcal/mol using an analytical fit to a recent a b i n i t opotential energy surface. Three initial vibrational states of H2, ν=0, 1, and 2, are considered in order to study the influence of vibrational reactant energy on the OH production. With increasing vibrational quantum number, (a) the threshold shifts to lower energies, and (b) the cross sections rise more steeply with collision energy. Rotational excitation of H2 enhances the total reaction cross section for each vibrational state over the range of H2(ν,j) states studied. The cross sections have been used to calculate reaction rate constants for temperatures 300°K⩽T⩽1000°K and the three lowest vibrational states. The ratio k (T,ν=0):k (T,ν=1):k (T,ν=2) is found to be 1:1.13×104:1.42×106 at 300°K and 1:2.12×101:1.24×102 at 1000°K, demonstrating that vibrational energy strongly enhances the reaction rate. At low temperatures, T≲500°K, the calculated rate constants for ν=0 are considerably smaller than the experimental results indicating that the barrier in the potential surface is probably too high. Agreement with experiments is improved for intermediate temperatures and is best for T≳1500°K where threshold effects are least important. The present calculations are in very good agreement with a recent rate measurement at T∼302°K by Light for reactions of vibrationally excited H2(ν=1) molecules.Keywords
This publication has 18 references indexed in Scilit:
- The effect of vibrational excitation on the reaction of O(3P) with H2 and the distribution of vibrational energy in the product OHThe Journal of Chemical Physics, 1978
- Incorporation of electronically nonadiabatic effects into bimolecular reactive systems. II. The collinear (H2 + H+, H2+ + H) systemChemical Physics, 1977
- Classical trajectory study of the effect of vibrational energy on the reaction of molecular hydrogen with atomic oxygenThe Journal of Chemical Physics, 1977
- Quantum mechanical reactive scattering for three-dimensional atom plus diatom systems. II. Accurate cross sections for H+H2The Journal of Chemical Physics, 1976
- Determination of the Rate Constant of the O + H2→OH + H Reaction using Atomic Oxygen Resonance Fluorescence and the Air Afterglow TechniquesCanadian Journal of Chemistry, 1975
- Analytical potentials for triatomic molecules from spectroscopic dataMolecular Physics, 1975
- Transient oxygen atom yields in H2-O2 ignition and the rate coefficient for O + H2 → OH + HInternational Journal of Chemical Kinetics, 1974
- Classical Dynamics of the Reaction of Fluorine Atoms with Hydrogen Molecules. II. Dependence on the Potential Energy SurfaceThe Journal of Chemical Physics, 1972
- Reactivity of hydrogen to atomic nitrogen and atomic oxygenTransactions of the Faraday Society, 1968
- HIGH RESOLUTION RAMAN SPECTROSCOPY OF GASES: IX. SPECTRA OF H2, HD, AND D2Canadian Journal of Physics, 1957