Theory of photon echoes from a pair of coupled two level systems: Impurity dimers and energy transfer in molecular crystals
- 1 October 1981
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 75 (7) , 3195-3202
- https://doi.org/10.1063/1.442491
Abstract
We present the theory of the photon echo and stimulated photon echo from a four level system that results from a pair of weakly coupled two level systems. This model describes an impurity dimer in a molecular crystal. We include the effect of relaxation processes, focusing on energy transfer between delocalized states. We find that both the photon and stimulated echoes contain information about static level splittings and dynamic energy transfer processes. Moreover, these observables show a dramatic dependence on the excitation power. We discuss implications of our results for recent experiments on concentration dependent dephasing of impurities in molecular crystals. Our analysis casts considerable doubt on the intermolecular interaction interpretation of these experiments.Keywords
This publication has 28 references indexed in Scilit:
- Theoretical studies of relaxation processes in excited state impurity molecules: Application to naphthalene dimersThe Journal of Chemical Physics, 1981
- Coherent Transient Effects in Optical SpectroscopyAnnual Review of Physical Chemistry, 1979
- Coherent Energy Transfer in SolidsAnnual Review of Physical Chemistry, 1978
- Observation and Relaxation of the Two-Photon Echo in Na VaporPhysical Review Letters, 1978
- Two-photon transient phenomenaPhysical Review A, 1977
- Spin-Flip Raman Echo in-Type CdSPhysical Review Letters, 1976
- Theory of modulated photon echoesPhysical Review A, 1976
- Absorption and Excimer Fluorescence Spectra of Sandwich Dimers of Substituted AnthracenesThe Journal of Chemical Physics, 1966
- Absorption and Fluorescence of Sandwich Dimers. Theory of the Excimer StateThe Journal of Chemical Physics, 1966
- Spin Echo Measurements of Nuclear Spin Coupling in MoleculesPhysical Review B, 1952