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通过负时间超快激光光谱研究人工光合系统中的激子和振动相干性。

Excitonic and vibrational coherence in artificial photosynthetic systems studied by negative-time ultrafast laser spectroscopy.

作者信息

Han Dongjia, Xue Bing, Du Juan, Kobayashi Takayoshi, Miyatake Tomohiro, Tamiaki Hitoshi, Xing Xin, Yuan Wei, Li Yanyan, Leng Yuxin

机构信息

State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China.

出版信息

Phys Chem Chem Phys. 2016 Sep 21;18(35):24252-60. doi: 10.1039/c6cp03540j. Epub 2016 Aug 17.

Abstract

Quantum coherences between excitonic states are believed to have a substantial impact on excitation energy transfer in photosynthetic systems. Here, the excitonic and vibrational coherence relaxation dynamics of artificially synthetic chlorosomes are studied by a sub 7 fs negative-time-delay laser spectroscopy at room temperature. The results provide direct evidence for the quantum coherence of the excitonic dephasing time of 23 ± 1 fs at physiologically relevant temperatures, which is significant in the initial step of energy transfer in chlorosome or chlorosome-like photosynthetic systems. Meanwhile, coherent molecular vibrations in the excited state are also detected without the effect of wave-packet motion in the ground state, which shows that the excited state wave-packet motion contributes greatly to the vibrational modes of ∼150 and ∼1340 cm(-1) in artificial chlorosome systems.

摘要

激子态之间的量子相干被认为对光合系统中的激发能转移有重大影响。在此,通过室温下小于7飞秒的负延时激光光谱研究了人工合成的叶绿体的激子和振动相干弛豫动力学。结果为生理相关温度下激子退相时间为23±1飞秒的量子相干提供了直接证据,这在叶绿体或类叶绿体光合系统能量转移的初始步骤中具有重要意义。同时,还检测到了激发态下的相干分子振动,且不受基态波包运动的影响,这表明激发态波包运动对人工叶绿体系统中约150和约1340厘米-1的振动模式有很大贡献。

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