Double-excitation manifold's effect on exciton transfer dynamics and the efficiency of coherent light harvesting
arXiv:1808.06677 · doi:10.1039/C8CP05535A
Abstract
The efficiency of natural light harvesting systems is largely determined by their ability to transfer excitations from the antenna to the energy trapping center before recombination. Exciton diffusion length similarly limits organic photovoltaics and demands bulk heterojunction architectures. Dark state protection, achieved by coherent coupling between subunits within the antenna, can significantly reduce radiative recombination and enhance the efficiency of energy trapping. In this work we extend the dark state concept to the double-excitation manifold by studying the dynamical flow of excitations. We show the lowest double-excitation state carries minimal oscillator strength but relaxation to this state from higher lying double excitations can be relatively rapid such that the lowest double excitation state can act as a dynamical dark state protecting excitation from radiative recombination. This mechanism is sensitive to topology and operates differently for chain and ring structures, while becoming more pronounced in both geometries when the size of the antenna increases. When the exciton-exciton annihilation (EEA) mechanism is considered, the double-excitation population is quickly depleted and the dynamics changes dramatically. However the efficiency and output power are still significantly different from those calculated using the single-excitation manifold alone, justifying the necessity of considering the double-excitation manifold. Remarkably, in certain scenarios, the EEA can even increase the overall light harvesting efficiency by bringing population down from the double-excitation dark states to the single-excitation manifold.
References in corpus (8)
- 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
- Photonics meets excitonics: natural and artificial molecular aggregates
- Computational Methodologies and Physical Insights into Electronic Energy Transfer in Photosynthetic Light-Harvesting Complexes
- Delocalized Quantum States Enhance Photocell Efficiency
- Dark states and delocalization: competing effects of quantum coherence on the efficiency of light harvesting systems
- Connecting bright and dark states through accidental degeneracy caused by lack of symmetry
Cited by in corpus (11)
- A quantum algorithm for evolving open quantum dynamics on quantum computing devices
- A general quantum algorithm for open quantum dynamics demonstrated with the Fenna-Matthews-Olson complex
- Simulating Open Quantum System Dynamics on NISQ Computers with Generalized Quantum Master Equations
- Quantum Machine-Learning for Eigenstate Filtration in Two-Dimensional Materials
- Simulating Chemistry on Bosonic Quantum Devices
- Light-harvesting with guide-slide superabsorbing condensed-matter nanostructures
- Enhancement of Photovoltaic Current Generation through Dark States in Donor-Acceptor Pairs of Tungsten-based Transition Metal Di-Chalcogenides (TMDCs)
- Optimal power generation using dark states in dimers strongly coupled to their environment
- Light-harvesting enhanced by quantum ratchet states
- Structure-based Hamiltonian model for IsiA uncovers a highly robust pigment protein complex
- Optical signatures of coherence in molecular dimers