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Surface Hopping Dynamics with the Frenkel Exciton Model in a Semiempirical Framework
- Source :
- Journal of Chemical Theory and Computation
- Publication Year :
- 2021
- Publisher :
- American Chemical Society, 2021.
-
Abstract
- We present an implementation of the Frenkel exciton model in the framework of the semiempirical floating occupation molecular orbitals-configuration interaction (FOMO-CI) electronic structure method, aimed at simulating the dynamics of multichromophoric systems, in which excitation energy transfer can occur, by a very efficient approach. The nonadiabatic molecular dynamics is here dealt with by the surface hopping method, but the implementation we proposed is compatible with other dynamical approaches. The exciton coupling is computed either exactly, within the semiempirical approximation considered, or by resorting to transition atomic charges. The validation of our implementation is carried out on the trans-azobenzeno-2S-phane (2S-TTABP), formed by two azobenzene units held together by sulfur bridges, taken as a minimal model of multichromophoric systems, in which both strong and weak exciton couplings are present.
- Subjects :
- Coupling
Physics
Computational chemistry
Energy
Exciton
Surface hopping
Electronic structure
Chromophores
Quantum mechanics
Molecular physics
Chromophores, Computational chemistry, Energy, Excitons, Quantum mechanics
Article
Computer Science Applications
Minimal model
chemistry.chemical_compound
Molecular dynamics
Azobenzene
chemistry
Excitons
Physical and Theoretical Chemistry
Excitation
Subjects
Details
- Language :
- English
- ISSN :
- 15499626 and 15499618
- Volume :
- 17
- Issue :
- 12
- Database :
- OpenAIRE
- Journal :
- Journal of Chemical Theory and Computation
- Accession number :
- edsair.doi.dedup.....50be115b76166ef0dc97ec15a6e84a54