Design principles for long-range energy transfer at room temperature
arXiv:1812.07905 · doi:10.1103/PhysRevX.11.041003
Abstract
Under physiological conditions, ballistic long-range transfer of electronic excitations in molecular aggregates is generally expected to be suppressed by noise and dissipative processes. Hence, quantum phenomena are not considered to be relevant for the design of efficient and controllable energy transfer over significant length and time scales. Contrary to this conventional wisdom, here we show that the robust quantum properties of small configurations of repeating clusters of molecules can be used to tune energy transfer mechanism that take place on much larger scales. With the support of an exactly solvable model, we demonstrate that coherent exciton delocalization and dark states within unit cells can be used to harness dissipative phenomena of varying nature (thermalization, fluorescence, non-radiative decay and weak inter-site correlations) to support classical propagation over macroscopic distances. In particular, we argue that coherent delocalization of electronic excitations over just a few pigments can drastically alter the relevant dissipation pathways which influence the energy transfer mechanism, and thus serve as a molecular control tool for large-scale properties of molecular materials. Building on these principles, we use extensive numerical simulations to demonstrate that they can explain currently not understood measurements of micron-scale exciton diffusion in nano-fabricated arrays of bacterial photosynthetic complexes. Based on these results we provide quantum design guidelines at the molecular scale to optimize both energy transfer speed and range over macroscopic distances in artificial light-harvesting architectures.
Major revisions, 22 pages, 9 figures
References in corpus (9)
- Dephasing assisted transport: Quantum networks and biomolecules
- Highly efficient energy excitation transfer in light-harvesting complexes: The fundamental role of noise-assisted transport
- Delocalized excitons in natural light harvesting complexes
- Dissipation-assisted matrix product factorization
- Optimizing co-operative multi-environment dynamics in a dark-state-enhanced photosynthetic heat engine
- Is There Elliptic Distortion in the Light Harvesting Complex 2 of Purple Bacteria?
- Optimal power generation using dark states in dimers strongly coupled to their environment
- Robust and fragile quantum effects in the transfer kinetics of delocalized excitons between B850 units of LH2 complexes
- The dark side of energy transport along excitonic wires: On-site energy barriers facilitate efficient, vibrationally-mediated transport through optically dark subspaces
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- The dark side of energy transport along excitonic wires: On-site energy barriers facilitate efficient, vibrationally-mediated transport through optically dark subspaces
- Cooperative subwavelength molecular quantum emitter arrays
- Light-harvesting enhanced by quantum ratchet states
- Noise-induced network topologies
- Long-Range Charge Transport in Homogeneous and Alternating-Rigidity Chains