Published November 1, 2005 | Version v1
Journal article

Cross sections of the O++H2→OH++H ion-molecule reaction and isotopic variants (D2, HD): Quasiclassical trajectory study and comparison with experiments

  • 1. Departament de Quimica Fisica i Centre de Recerca en Quimica Teorica, Universitat de Barcelona i Parc Cientific de Barcelona, C/Marti i Franques, 1, 08028 Barcelona (Spain)
  • 2. Departamento de Quimica, Universidad de La Rioja, C/Madre de Dios, 51, 26006 Logrono (Spain)

Description

A dynamics study [cross section and microscopic mechanism versus collision energy (ET)] of the reaction O++H2→OH++H, which plays an important role in Earth's ionosphere and interstellar chemistry, was conducted using the quasiclassical trajectory method, employing an analytical potential energy surface (PES) recently derived by our group [R. Martinez et al., J. Chem. Phys. 120, 4705 (2004)]. Experimental excitation functions for the title reaction, as well as its isotopic variants with D2 and HD, were near-quantitatively reproduced in the calculations in the very broad collision energy range explored (ET=0.01-6.0 eV). Intramolecular and intermolecular isotopic effects were also examined, yielding data in good agreement with experimental results. The reaction occurs via two microscopic mechanisms (direct and nondirect abstraction). The results were satisfactorily interpreted based on the reaction probability and the maximum impact parameter dependences with ET, and considering the influence of the collinear [OHH]+ absolute minimum of the PES on the evolution from reactants to products. The agreement between theory and experiment suggests that the reaction mainly occurs through the lowest energy PES and nonadiabatic processes are not very important in the wide collision energy range analyzed. Hence, the PES used to describe this reaction is suitable for both kinetics and dynamics studies

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
123
Journal Issue
17
Journal Page Range
p. 174312-174312.7
ISSN
0021-9606
CODEN
JCPSA6

Optional Information

Notes
(c) 2005 American Institute of Physics