Competition between energy and phase relaxation in electronic curve crossing processes
- 8 August 1995
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 103 (6) , 2092-2101
- https://doi.org/10.1063/1.469684
Abstract
We present results from simulations of vibrational energy and phase relaxation and electronic curve crossing using a multilevel formulation of Redfield theory, which demonstrate the shortcomings of the optical Bloch approximation and the importance of coherence transfer processes in the relaxation dynamics of multilevel systems. Specifically, we show that for a harmonic well, energy relaxation can occur with retention of vibrational phase, and that for sufficiently strong electronic coupling, the product of an electronic curve crossing process can be formed vibrationally coherent even when no coherence is present in the initially excited state.Keywords
This publication has 30 references indexed in Scilit:
- Oscillations in the Spontaneous Fluorescence from Photosynthetic Reaction CentersThe Journal of Physical Chemistry, 1995
- Time- and frequency-resolved spontaneous emission as a probe of coherence effects in ultrafast electron transfer reactionsThe Journal of Chemical Physics, 1994
- Vibrationally Coherent Photochemistry in the Femtosecond Primary Event of VisionScience, 1994
- The breaking and remaking of a bond: Caging of I2 in solid KrThe Journal of Chemical Physics, 1994
- Ultrafast charge transfer in an electron donor–acceptor complexThe Journal of Chemical Physics, 1994
- Femtosecond wave packet and chemical reaction dynamics of iodine in solution: Tunable probe study of motion along the reaction coordinateThe Journal of Chemical Physics, 1993
- Visualization of coherent nuclear motion in a membrane protein by femtosecond spectroscopyNature, 1993
- Redfield theory is quantitative for coupled harmonic oscillatorsChemical Physics Letters, 1992
- Application of a multilevel Redfield theory to electron transfer in condensed phasesThe Journal of Chemical Physics, 1992
- The Theory of Relaxation ProcessesPublished by Elsevier ,1965