Coherent pulse sequence induced control of selectivity of reactions: Exact quantum mechanical calculations
- 15 November 1986
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 85 (10), 5805-5820
- https://doi.org/10.1063/1.451542
Abstract
We present a novel approach to the control of selectivity of reaction products. The central idea is that in a two‐photon or multiphoton process that is resonant with an excited electronic state, the resonant excited state potential energy surface can be used to assist chemistry on the ground state potential energy surface. By controlling the delay between a pair of ultrashort (femtosecond) laser pulses, it is possible to control the propagation time on the excited state potential energy surface. Different propagation times, in turn, can be used to generate different chemical products. There are many cases for which selectivity of product formation should be possible using this scheme. We illustrate the methodology with numerical application to a variety of model two degree of freedom systems with two inequivalent exit channels. Branching ratios obtained using a swarm of classical trajectories are in good qualitative agreement with full quantum mechanical calculations.Keywords
This publication has 17 references indexed in Scilit:
- Luminescence of alkali halide crystals by multiphoton excitationChemical Physics Letters, 1986
- A theory for long-lived high-energy excitation of a local mode using two lasersChemical Physics Letters, 1986
- On the selective elimination of intramolecular vibrational redistribution using strong resonant laser fieldsChemical Physics Letters, 1985
- Simplification of the resonance fluorescence spectrum by detuning from absorption featuresThe Journal of Physical Chemistry, 1984
- A fourier method solution for the time dependent Schrödinger equation as a tool in molecular dynamicsJournal of Computational Physics, 1983
- A Fourier method solution for the time dependent Schrödinger equation: A study of the reaction H++H2, D++HD, and D++H2The Journal of Chemical Physics, 1983
- Simple aspects of Raman scatteringThe Journal of Physical Chemistry, 1982
- The semiclassical way to molecular spectroscopyAccounts of Chemical Research, 1981
- Time-dependent theory of Raman scatteringThe Journal of Chemical Physics, 1979
- Quantum corrections to classical photodissociation modelsThe Journal of Chemical Physics, 1978