Vinylidene: Potential energy surface and unimolecular reaction dynamics
- 1 May 1984
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 80 (9) , 4347-4354
- https://doi.org/10.1063/1.447266
Abstract
New quantum chemistry calculations (with a triple zeta plus polarization basis set, and a single and double configuration interaction) have been carried out to determine the equilibrium points and the transition state for the vinylidene (H2C=C:)→acetylene (HC≡CH) isomerization. A classical barrier height (i.e., with no zero point energy effects) of 6.3 kcal/mol is obtained, and application of the Davidson correction for unlinked clusters reduces this to 5.4 kcal/mol. Our best estimate is that the true classical barrier lies in the range 2–4 kcal/mol. The dynamics of the vinylidene/acetylene isomerization is described with the framework of the reaction path Hamiltonian. The lifetime of vinylidene (in its ground vibrational state) with respect to this process is calculated to be 0.24 to 4.6 ps for a classical barrier of 2 to 4 kcal/mol. This lifetime decreases by a factor of ∼2 if one quantum of the CH2 scissors mode of vinylidene is excited, but is predicted to increase somewhat if a quantum of the C–C stretch is excited. These results are all consistent with the recent experimental observation of vinylidene via photodetachment of C2H−2.Keywords
This publication has 30 references indexed in Scilit:
- Unified theory of nuclear reactionsPublished by Elsevier ,2004
- The shape-driven graphical unitary group approach to the electron correlation problem. Application to the ethylene moleculeThe Journal of Chemical Physics, 1982
- Applications of a simple dynamical model to the reaction path Hamiltonian: tunneling corrections to rate constants, product state distributions, line widths of local mode overtones, and mode specificity in unimolecular decompositionThe Journal of Physical Chemistry, 1982
- Unified semiclassical perturbation and infinite order sudden approximation, with application to the reaction path Hamiltonian modelThe Journal of Chemical Physics, 1981
- Reaction path Hamiltonian: Tunneling effects in the unimolecular isomerization HNC→HCNThe Journal of Chemical Physics, 1980
- The graphical unitary group approach to the electron correlation problem. Methods and preliminary applicationsThe Journal of Chemical Physics, 1979
- Reactions of O− with N2, N2O, SO2, NH3, CH4, and C2H4 and C2H2− with O2 from 300 °K to relative kinetic energies of ∼2 eVThe Journal of Chemical Physics, 1975
- Adiabatic Theory of Chemical ReactionsThe Journal of Chemical Physics, 1970
- Analytical Mechanics of Chemical Reactions. III. Natural Collision CoordinatesThe Journal of Chemical Physics, 1968
- A unified theory of nuclear reactions. IIAnnals of Physics, 1962