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光合能量转移的相干和非相干理论。

Coherent and incoherent theories for photosynthetic energy transfer.

作者信息

Tao Ming-Jie, Zhang Na-Na, Wen Peng-Yu, Deng Fu-Guo, Ai Qing, Long Gui-Lu

机构信息

Department of Physics, Tsinghua University, Beijing 100084, China; Department of Physics, Applied Optics Beijing Area Major Laboratory, Beijing Normal University, Beijing 100875, China.

Department of Physics, Applied Optics Beijing Area Major Laboratory, Beijing Normal University, Beijing 100875, China.

出版信息

Sci Bull (Beijing). 2020 Feb 26;65(4):318-328. doi: 10.1016/j.scib.2019.12.009. Epub 2019 Dec 12.

Abstract

There is a remarkable characteristic of photosynthesis in nature, that is, the energy transfer efficiency is close to 100%. Recently, due to the rapid progress made in the experimental techniques, quantum coherent effects have been experimentally demonstrated. Traditionally, the incoherent theories are capable of calculating the energy transfer efficiency, e.g., (generalized) Förster theory and modified Redfield theory (MRT). However, in order to describe the quantum coherent effects in photosynthesis, one has to exploit coherent theories, such as hierarchical equation of motion (HEOM), quantum path integral, coherent modified Redfield theory (CMRT), small-polaron quantum master equation, and general Bloch-Redfield theory in addition to the Redfield theory. Here, we summarize the main points of the above approaches, which might be beneficial to the quantum simulation of quantum dynamics of exciton energy transfer (EET) in natural photosynthesis, and shed light on the design of artificial light-harvesting devices.

摘要

自然界中光合作用有一个显著特点,即能量转移效率接近100%。近来,由于实验技术的迅速发展,量子相干效应已得到实验证实。传统上,非相干理论能够计算能量转移效率,例如(广义)福斯特理论和修正的雷德菲尔德理论(MRT)。然而,为了描述光合作用中的量子相干效应,除了雷德菲尔德理论外,还必须采用相干理论,如运动方程分层法(HEOM)、量子路径积分、相干修正雷德菲尔德理论(CMRT)、小极化子量子主方程以及一般的布洛赫-雷德菲尔德理论。在此,我们总结上述方法的要点,这可能有助于对自然光合作用中激子能量转移(EET)的量子动力学进行量子模拟,并为人工光捕获器件的设计提供思路。

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