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首页> 外文期刊>Journal of Photochemistry and Photobiology, A. Chemistry >Energy transfer and primary charge separation upon selective femtosecond excitation at 810 nm in the reaction center complex from Heliobacterium modesticaldum
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Energy transfer and primary charge separation upon selective femtosecond excitation at 810 nm in the reaction center complex from Heliobacterium modesticaldum

机译:从硫杆菌血管杆菌在反应中心复合物中选择性飞秒激发时的能量转移和主要电荷分离

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The kinetics of excitation energy transfer and charge separation process in the photosynthetic reaction center of Heliobacterium modesticaldum were investigated with femtosecond transient absorption spectroscopy at room temperature. This is the first report using the highly purified reaction center isolated from heliobacteria. The bacteriochlorophyll (BChl) g pigment pool was selectively excited at its Q(y) band of 810 nm. The transient difference spectra were structured enough to be assigned to major pigment pools (B(md)787, B(md)800, and B(md)812), despite the broad absorption spectrum of the Q(y) region at room temperature. The spectral equilibration among three different spectral pools completed in less than 0.2 ps, indicating a very rapid energy transfer process because of the strong excitonic interaction between BChl gs. The decay-associated difference spectra (DADS) obtained by a global fit analysis from 450 nm to 900 nm revealed a very rapid energy transfer process and a subsequent trapping, with a time constant of 20 ps, to form the initial charge separation state of P800(+) A(0)(-). The 20 ps component showed the bleaching Q(y) band at 816 nm and would derive from the excited red-BChl gs or might be due to the exciton coupling between P800 and a monomeric accessory BChl g. Furthermore, the nondecaying component spectrum exhibited a slightly broader peak centered at 792 nm, ascribed to the overlapping of two bleaching bands derived from both the P800 itself and an accessory BChl g excitonically coupled with the primary acceptor 8(1)- OH-Chl a(F). This was supported by the appearance of another bleaching band at 573 nm, which was detected in the Q(x) region of BChl gs.
机译:在室温下,用飞秒瞬态吸收光谱研究了激发能量转移和电荷分离过程中的激发能量转移和电荷分离过程的动力学。这是使用高度纯化的反应中心从螺旋杆菌中分离的第一个报告。在810nm的Q(y)带中选择性地激发菌氯苯丙烯酰基(BCH1)G颜料池。瞬态差异光谱的结构足以被分配给主要颜料池(B(MD)787,B(MD)800和B(MD)812),尽管Q(Y)区域在室温下宽吸收光谱。在小于0.2ps的三种不同光谱池中完成的光谱平衡,由于BCHL GS之间的强激发性相互作用,表示非常快速的能量转移过程。通过450nm至900nm的全球拟合分析获得的衰减相关差异光谱(爸爸)显示出非常快速的能量转移过程和随后的捕获,时间常数为20 ps,形成P800的初始电荷分离状态(+)A(0)( - )。该20ps组分在816nm处显示漂白Q(y)带,并从激发的红bChl gs中得出,或者可能是由于P800和单体配件BCHL G之间的激子偶联。此外,非截面分量谱表现出以792nm为中心的略宽峰,归因于衍生自P800本身的两个漂白条带的重叠,以及促进与初级受体8(1) - OH-CHL a的辅助BCHL G (F)。这是通过在573nm处的另一个漂白带的外观来支持,该漂白带在BCHL GS的Q(x)区域中检测到。

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