Department of Physics and Astronomy, University College London, Gower Street, London WC1E 6BT, United Kingdom.
J Chem Phys. 2012 Nov 7;137(17):174109. doi: 10.1063/1.4764100.
The influence of fast vibrations on energy transfer and conversion in natural molecular aggregates is an issue of central interest. This article shows the important role of high-energy quantized vibrations and their non-equilibrium dynamics for energy transfer in photosynthetic systems with highly localized excitonic states. We consider the cryptophyte antennae protein phycoerythrin 545 and show that coupling to quantized vibrations, which are quasi-resonant with excitonic transitions is fundamental for biological function as it generates non-cascaded transport with rapid and wider spatial distribution of excitation energy. Our work also indicates that the non-equilibrium dynamics of such vibrations can manifest itself in ultrafast beating of both excitonic populations and coherences at room temperature, with time scales in agreement with those reported in experiments. Moreover, we show that mechanisms supporting coherent excitonic dynamics assist coupling to selected modes that channel energy to preferential sites in the complex. We therefore argue that, in the presence of strong coupling between electronic excitations and quantized vibrations, a concrete and important advantage of quantum coherent dynamics is precisely to tune resonances that promote fast and effective energy distribution.
快速振动对自然分子聚集体中能量转移和转换的影响是一个核心关注点。本文展示了高能量子振动及其非平衡动力学在具有高度局域激子态的光合作用系统中能量转移的重要作用。我们考虑了隐藻天线蛋白藻红蛋白 545,并表明与激子跃迁准共振的量子振动的耦合对于生物功能至关重要,因为它会产生非级联输运,从而快速且更广泛地分布激发能量。我们的工作还表明,这种振动的非平衡动力学可以在室温下表现为激子群体和相干的超快拍频,其时间尺度与实验中报道的时间尺度一致。此外,我们表明支持相干激子动力学的机制有助于将能量耦合到复合物中优先位置的选定模式。因此,我们认为,在电子激发和量子振动之间存在强耦合的情况下,量子相干动力学的一个具体而重要的优势恰恰是调谐共振,以促进快速有效的能量分布。