Steady-State Analysis of Light-harvesting Energy Transfer Driven by Incoherent Light: From Dimers to Networks
Pei-Yun Yang, Jianshu Cao

TL;DR
This paper develops a steady-state analysis framework for light-harvesting energy transfer driven by incoherent light, revealing a fundamental relation between quantum coherence, flux, and efficiency applicable to complex exciton networks.
Contribution
It introduces a universal coherence-flux-efficiency relation for steady-state energy transfer in light-harvesting systems, extending to arbitrary networks and not limited to incoherent radiation.
Findings
Steady-state coherence determines optimal energy transfer efficiency.
The coherence-flux-efficiency relation holds for any exciton network under stationary conditions.
Steady-state coherence arises from light-induced transient effects and system-bath interactions.
Abstract
The question of how quantum coherence facilitates energy transfer has been intensively debated in the scientific community. Since natural and artificial light-harvesting units operate under the stationary condition, we address this question via a non-equilibrium steady-state analysis of a molecular dimer irradiated by incoherent sunlight and then generalize the key predictions to arbitrarily-complex exciton networks. The central result of the steady-state analysis is the coherence-flux-efficiency relation: with the normalization constant. In this relation, the first equality indicates that energy transfer efficiency is uniquely determined by the trapping flux, which is the product of flux and branching ratio for trapping at the reaction centers, and the second equality…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Photoreceptor and optogenetics research · Photochemistry and Electron Transfer Studies
