Impact of Spatial Inhomogeneity on Excitation Energy Transport in the Fenna-Matthews-Olson Complex
arXiv:2302.01886 · doi:10.1021/acs.jpcb.3c03062
Abstract
The dynamics of the excitation energy transfer (EET) in photosynthetic complexes is an interesting question both from the perspective of fundamental understanding and the research in artificial photosynthesis. Challenges persist in numerically simulating these systems both in parameterizing them and following their dynamics over long periods of time. Over the past decade, very accurate spectral densities have been developed to capture spatial inhomogeneties in the Fenna-Matthews-Olson (FMO) complex. We investigate the dynamics of FMO with an exact treatment of various theoretical spectral densities. Because FMO has Hamiltonian elements that connect most of the bacteriochlorophyll sites together, it becomes difficult to rigorously identify the energy transport pathways in the complex. We use the recently introduced ideas of relating coherence to population derivatives to analyze the transport process and reveal some of the pathways.
9 pages, 9 figures
References in corpus (4)
- Perspective: Numerically "exact" approach to open quantum dynamics: The hierarchical equations of motion (HEOM)
- A Multisite Decomposition of the Tensor Network Path Integrals
- QuantumDynamics.jl: A modular approach to simulations of dynamics of open quantum systems
- Impact of solvent on state-to-state population transport in multistate systems using coherences
Cited by in corpus (5)
- Quantum correlation functions through tensor network path integral
- Path integral Lindblad master equation through transfer tensor method & the generalized quantum master equation
- Impact of Loss Mechanisms on Linear Spectra of Excitonic and Polaritonic Aggregates
- Ultrastrong coupling limit to quantum mean force Gibbs state for anharmonic environment
- A Non-Hermitian State-to-State Analysis of Transport in Aggregates with Multiple Endpoints