Hoyer Stephan, Ishizaki Akihito, Whaley K Birgitta
Department of Physics, University of California, Berkeley, California 94720, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Oct;86(4 Pt 1):041911. doi: 10.1103/PhysRevE.86.041911. Epub 2012 Oct 15.
Experimental evidence shows that a variety of photosynthetic systems can preserve quantum beats in the process of electronic energy transfer, even at room temperature. However, whether this quantum coherence arises in vivo and whether it has any biological function have remained unclear. Here we present a theoretical model that suggests that the creation and recreation of coherence under natural conditions is ubiquitous. Our model allows us to theoretically demonstrate a mechanism for a ratchet effect enabled by quantum coherence, in a design inspired by an energy transfer pathway in the Fenna-Matthews-Olson complex of the green sulfur bacteria. This suggests a possible biological role for coherent oscillations in spatially directing energy transfer. Our results emphasize the importance of analyzing long-range energy transfer in terms of transfer between intercomplex coupling states rather than between site or exciton states.
实验证据表明,多种光合系统即使在室温下,也能在电子能量转移过程中保持量子拍。然而,这种量子相干是否在体内产生以及是否具有任何生物学功能仍不清楚。在此,我们提出一个理论模型,该模型表明在自然条件下相干性的产生和再产生是普遍存在的。我们的模型使我们能够在理论上证明一种由量子相干实现的棘轮效应机制,该机制的设计灵感来源于绿硫细菌芬纳 - 马修斯 - 奥尔森复合物中的能量转移途径。这表明相干振荡在空间上引导能量转移方面可能具有生物学作用。我们的结果强调了从复合物间耦合态之间的转移而非位点或激子态之间的转移来分析长程能量转移的重要性。