Dark states and delocalization: competing effects of quantum coherence on the efficiency of light harvesting systems
arXiv:1710.06792 · doi:10.1063/1.5009903
Abstract
Natural light harvesting systems exploit electronic coupling of identical chromophores to generate efficient and robust excitation transfer and conversion. Dark states created by strong coupling between chromophores in the antenna structure can significantly reduce radiative recombination and enhance energy conversion efficiency. Increasing the number of the chromophores increases the number of dark states and the associated enhanced energy conversion efficiency, yet also delocalizes excitations away from the trapping center and reduces the energy conversion rate. Therefore, a competition between dark state protection and delocalization must be considered when designing the optimal size of a light harvesting system. In this study, we explore the two competing mechanisms in a chain-structured antenna and show that dark state protection is the dominant mechanism, with an intriguing dependence on the parity of the number of chromophores. This dependence is linked to the exciton distribution among eigenstates which is strongly affected by the coupling strength between chromophores and the temperature. Combining these findings, we propose that increasing the coupling strength between the chromophores can significantly increase the power output of the light harvesting system.
References in corpus (5)
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Environment-Assisted Quantum Walks in Photosynthetic Energy Transfer
- Highly efficient energy excitation transfer in light-harvesting complexes: The fundamental role of noise-assisted transport
- Markovian master equations for quantum thermal machines: local vs global approach
- Delocalized Quantum States Enhance Photocell Efficiency
Cited by in corpus (12)
- A quantum algorithm for evolving open quantum dynamics on quantum computing devices
- Open quantum system dynamics and the mean force Gibbs state
- Simulating Open Quantum System Dynamics on NISQ Computers with Generalized Quantum Master Equations
- Design principles for long-range energy transfer at room temperature
- Classification of Coherent Enhancements of Light-Harvesting Processes
- Enhancement of Photovoltaic Current Generation through Dark States in Donor-Acceptor Pairs of Tungsten-based Transition Metal Di-Chalcogenides (TMDCs)
- Eliminating radiative losses in long-range exciton transport
- Double-excitation manifold's effect on exciton transfer dynamics and the efficiency of coherent light harvesting
- Analytical solution of the disordered Tavis-Cummings model and its Fano resonances
- An analytic expression for the optical exciton transition rates in the polaron frame
- Connecting bright and dark states through accidental degeneracy caused by lack of symmetry
- Survival probability of the Grover walk on the ladder graph