Ultrafast energy transfer with competing channels: Non-equilibrium Förster and Modified Redfield theories
We derive equations of motion for the reduced density matrix of a molecular system which undergoes energy transfer dynamics competing with fast internal conversion channels. Environmental degrees of freedom of such a system have no time to relax to quasi-equilibrium in the electronic excited state o...
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Published in | The Journal of chemical physics Vol. 146; no. 17; p. 174109 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
United States
07.05.2017
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Online Access | Get more information |
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Summary: | We derive equations of motion for the reduced density matrix of a molecular system which undergoes energy transfer dynamics competing with fast internal conversion channels. Environmental degrees of freedom of such a system have no time to relax to quasi-equilibrium in the electronic excited state of the donor molecule, and thus the conditions of validity of Förster and Modified Redfield theories in their standard formulations do not apply. We derive non-equilibrium versions of the two well-known rate theories and apply them to the case of carotenoid-chlorophyll energy transfer. Although our reduced density matrix approach does not account for the formation of vibronic excitons, it still confirms the important role of the donor ground-state vibrational states in establishing the resonance energy transfer conditions. We show that it is essential to work with a theory valid in a strong system-bath interaction regime to obtain correct dependence of the rates on donor-acceptor energy gap. |
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ISSN: | 1089-7690 |
DOI: | 10.1063/1.4981523 |