Quantum interferences among Dexter energy transfer pathways
Author:
Affiliation:
1. Department of Chemistry
2. Duke University
3. Durham
4. USA
5. Department of Physics
6. University of Cyprus
7. 1678 Nicosia
8. Cyprus
9. Department of Biochemistry
Abstract
We explore Dexter coupling pathway interferences in non-covalent assemblies, employing a method that enables the assessment of Dexter coupling pathway strengths, interferences, and their physical origins in the context of one-particle and two-particle (i.e., coulombic) operators.
Funder
U.S. Department of Energy
Publisher
Royal Society of Chemistry (RSC)
Subject
Physical and Theoretical Chemistry
Link
http://pubs.rsc.org/en/content/articlepdf/2019/FD/C9FD00007K
Reference37 articles.
1. R. E. Blankenship , Molecular Mechanisms of Photosynthesis , Wiley-Blackwell , 2nd edn, 2014
2. V. May and O.Kühn , Charge and Energy Transfer Dynamics in Molecular Systems , Wiley , Weinheim , 3rd edn, 2011
3. Dexter energy transfer pathways
4. Photophysics and Mechanisms of Intramolecular Electronic Energy Transfer in Bichromophoric Molecular Systems: Solution and Supersonic Jet Studies
5. Zwischenmolekulare Energiewanderung und Fluoreszenz
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