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光系统II核心复合物内的超快能量转移。

Ultrafast energy transfer within the photosystem II core complex.

作者信息

Pan Jie, Gelzinis Andrius, Chorošajev Vladimir, Vengris Mikas, Senlik S Seckin, Shen Jian-Ren, Valkunas Leonas, Abramavicius Darius, Ogilvie Jennifer P

机构信息

Department of Physics, University of Michigan, Ann Arbor, 48109, USA.

出版信息

Phys Chem Chem Phys. 2017 Jun 14;19(23):15356-15367. doi: 10.1039/c7cp01673e.

Abstract

We report 2D electronic spectroscopy on the photosystem II core complex (PSII CC) at 77 K under different polarization conditions. A global analysis of the high time-resolution 2D data shows rapid, sub-100 fs energy transfer within the PSII CC. It also reveals the 2D spectral signatures of slower energy equilibration processes occurring on several to hundreds of picosecond time scales that are consistent with previous work. Using a recent structure-based model of the PSII CC [Y. Shibata, S. Nishi, K. Kawakami, J. R. Shen and T. Renger, J. Am. Chem. Soc., 2013, 135, 6903], we simulate the energy transfer in the PSII CC by calculating auxiliary time-resolved fluorescence spectra. We obtain the observed sub-100 fs evolution, even though the calculated electronic energy shows almost no dynamics at early times. On the other hand, the electronic-vibrational interaction energy increases considerably over the same time period. We conclude that interactions with vibrational degrees of freedom not only induce population transfer between the excitonic states in the PSII CC, but also reshape the energy landscape of the system. We suggest that the experimentally observed ultrafast energy transfer is a signature of excitonic-polaron formation.

摘要

我们报道了在77 K下不同偏振条件下对光系统II核心复合物(PSII CC)进行的二维电子光谱研究。对高时间分辨率二维数据的全局分析表明,PSII CC内存在快速的、亚100飞秒的能量转移。它还揭示了在几皮秒到几百皮秒时间尺度上发生的较慢能量平衡过程的二维光谱特征,这与之前的工作一致。使用最近基于结构的PSII CC模型[Y. Shibata, S. Nishi, K. Kawakami, J. R. Shen和T. Renger, J. Am. Chem. Soc., 2013, 135, 6903],我们通过计算辅助时间分辨荧光光谱来模拟PSII CC中的能量转移。尽管计算得到的电子能量在早期几乎没有动力学变化,但我们仍获得了观测到的亚100飞秒演化。另一方面,电子 - 振动相互作用能在同一时间段内显著增加。我们得出结论,与振动自由度的相互作用不仅诱导了PSII CC中激子态之间的布居转移,还重塑了系统的能量格局。我们认为,实验观测到的超快能量转移是激子 - 极化子形成的标志。

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