English

Clustered Geometries Exploiting Quantum Coherence Effects for Efficient Energy Transfer in Light Harvesting

Biological Physics 2013-07-30 v1 Mesoscale and Nanoscale Physics Chemical Physics Quantum Physics

Abstract

Elucidating quantum coherence effects and geometrical factors for efficient energy transfer in photosynthesis has the potential to uncover non-classical design principles for advanced organic materials. We study energy transfer in a linear light-harvesting model to reveal that dimerized geometries with strong electronic coherences within donor and acceptor pairs exhibit significantly improved efficiency, which is in marked contrast to predictions of the classical F\"orster theory. We reveal that energy tuning due to coherent delocalization of photoexcitations is mainly responsible for the efficiency optimization. This coherence-assisted energy-tuning mechanism also explains the energetics and chlorophyll arrangements in the widely-studied Fenna-Matthews-Olson complex. We argue that a clustered network with rapid energy relaxation among donors and resonant energy transfer from donor to acceptor states provides a basic formula for constructing efficient light-harvesting systems, and the general principles revealed here can be generalized to larger systems and benefit future innovation of efficient molecular light-harvesting materials.

Keywords

Cite

@article{arxiv.1307.5590,
  title  = {Clustered Geometries Exploiting Quantum Coherence Effects for Efficient Energy Transfer in Light Harvesting},
  author = {Qing Ai and Tzu-Chi Yen and Bih-Yaw Jin and Yuan-Chung Cheng},
  journal= {arXiv preprint arXiv:1307.5590},
  year   = {2013}
}

Comments

26 pages, 5 figures

R2 v1 2026-06-22T00:55:09.445Z