Back to Search
Start Over
Effective normal modes identify vibrational motions which maximally promote vibronic mixing in excitonically coupled aggregates
- Source :
- The Journal of chemical physics. 154(11)
- Publication Year :
- 2021
-
Abstract
- Controlling energy transfer through vibronic resonance is an interesting possibility. Exact treatment of non-adiabatic vibronic coupling is necessary to fully capture its role in driving energy transfer. However, the exact treatment of vibrations in extended systems is expensive, sometimes requiring oversimplifying approximations to reduce vibrational dimensionality, and do not provide physical insights into which specific vibrational motions promote energy transfer. In this communication, we derive effective normal modes for understanding vibronically enhanced energy transfer in excitonically coupled aggregates. We show that the dynamics of the overall high-dimensional vibronic Hamiltonian can be better understood through one-dimensional Hamiltonians separable along these effective modes. We demonstrate this approach on a trimer toy model to analyze the role of an intermediate “trap” site in mediating energy transfer between electronically uncoupled sites. Bringing uncoupled sites into vibronic resonance converts the “trap” into a “shuttle” for energy transfer. By deconvolving the dynamics along the aggregate normal modes, our approach identifies the specific vibrational motions, which maximally promote energy transfer, against spectator modes, which do not participate in vibronic mixing.
- Subjects :
- Physics
Toy model
010304 chemical physics
General Physics and Astronomy
010402 general chemistry
01 natural sciences
Molecular physics
Resonance (particle physics)
0104 chemical sciences
Vibration
symbols.namesake
Vibronic coupling
Normal mode
0103 physical sciences
Physics::Atomic and Molecular Clusters
symbols
Physics::Chemical Physics
Physical and Theoretical Chemistry
Hamiltonian (quantum mechanics)
Mixing (physics)
Curse of dimensionality
Subjects
Details
- ISSN :
- 10897690
- Volume :
- 154
- Issue :
- 11
- Database :
- OpenAIRE
- Journal :
- The Journal of chemical physics
- Accession number :
- edsair.doi.dedup.....fb79b32b2f9e5075ae3ad01c4afe624a