A multi-pathway model for Photosynthetic reaction center
arXiv:1507.00001 · doi:10.1063/1.4944730
Abstract
Charge separation in light-harvesting complexes occurs in a pair of tightly coupled chlorophylls at the heart of photosynthetic reaction centers of both plants and bacteria. Recently it has been shown that quantum coherence can, in principle, enhance the efficiency of a solar cell, working like a quantum heat engine (QHE). Here, we propose a biological quantum heat engine (BQHE) motivated by Photosystem {\rm II} reaction center (PS{\rm II} RC) to describe the charge separation. Our model mainly considers two charge-separation pathways more than that in the published literature. The two pathways can interfere via cross-couplings and work together to enhance the charge-separation yields. We explore how these cross-couplings increase the current and voltage of the charge separation and discuss the advantages of multiple pathways in terms of current and power. The robustness of the BQHE against the charge recombination in natural PS{\rm II} RC and dephasing induced by environments is also explored, and extension from two pathways to multiple pathways is made. These results suggest that nature-mimicking architectures with engineered multiple pathways for charge separations might be better for artificial solar energy devices.
12 pages, 10 figures, 1 table
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Cited by in corpus (8)
- Effects of system-bath coupling on Photosynthetic heat engine: A polaron master equation approach
- Natural Regulation of Energy Flow in a Green Quantum Photocell
- Environment assisted and environment hampered efficiency at maximum power in a molecular photo cell
- Influence of the coupled-dipoles on photosynthetic performance in a photosynthetic quantum heat engine
- Charge-transport enhanced by the quantum entanglement in the Photosystem II reaction center
- Photovoltaic performances in a cavity-coupled double quantum dots photocell
- Photosynthetic properties assisted by the quantum entanglement in two adjacent pigment molecules
- Delayed response to the photovoltaic performance in a double quantum dot photocell with spatially correlated fluctuation