Ma Fei, Romero Elisabet, Jones Michael R, Novoderezhkin Vladimir I, van Grondelle Rienk
Department of Physics and Astronomy , Faculty of Sciences, VU University Amsterdam , De Boelelaan 1081 , 1081 HV Amsterdam , The Netherlands.
School of Biochemistry , University of Bristol , Biomedical Sciences Building, University Walk, Bristol BS8 1TD , United Kingdom.
J Phys Chem Lett. 2018 Apr 19;9(8):1827-1832. doi: 10.1021/acs.jpclett.8b00108. Epub 2018 Mar 29.
Two-dimensional electronic spectroscopy was applied to a variant of the reaction center (RC) of purple bacterium Rhodobacter sphaeroides lacking the primary acceptor ubiquinone in order to understand the ultrafast separation and transfer of charge between the bacteriochlorin cofactors. For the first time, characteristic 2D spectra were obtained for the participating excited and charge-transfer states, and the electron-transfer cascade (including two different channels, the P* and B* channels) was fully mapped. By analyzing quantum beats using 2D frequency maps, excited-state vibrational modes at 153 and 33 cm were identified. We speculate that these modes couple to the charge separation (CS) process and collectively optimize the CS and are responsible for the superhigh efficiency.
二维电子光谱被应用于球形红细菌反应中心(RC)的一个变体,该变体缺乏初级受体泛醌,目的是了解细菌叶绿素辅因子之间电荷的超快分离和转移。首次获得了参与的激发态和电荷转移态的特征二维光谱,并完整绘制了电子转移级联(包括两个不同通道,即P通道和B通道)。通过使用二维频率图分析量子拍,识别出了153和33厘米处的激发态振动模式。我们推测这些模式与电荷分离(CS)过程耦合,共同优化CS并导致了超高效率。