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Primary charge-separation rate at 5 K in isolated photosystem II reaction centers containing five and six chlorophyll a molecules

机译:在包含五个和六个叶绿素a分子的孤立的光系统II反应中心中,在5 K下的一次电荷分离率

摘要

Although the primary charge-separation rate in the photosystem II (PSII) reaction center (RC) has been the subject of many time- and frequency-domain experiments, its value is still an unsettled issue, especially at or near room temperature. As a first step toward understanding its temperature dependence, it is important to have a reliable value for the rate at liquid helium temperatures. Presented are results from triplet bottleneck hole-burning (TBHB) experiments at 5.0 K on RCs isolated from spinach that contain either six or five chlorophyll a (Chl) molecules per two pheophytin (Pheo) molecules (referred to as RC-6 and RC-5). RC-5 possesses only one of the two peripheral Chls of the RC. The triplet state that serves as the population bottleneck is formed by charge recombination of the radical ion pair P680+ Pheo1 -, where P680 is the primary electron donor and Pheo1 is the acceptor on the active (D1) branch. In the TBHB experiments, the laser burn intensity was varied over 2 orders of magnitude to assess the contribution from fluence broadening to the width of the zero-phonon hole (ZPH) burned into the P680 absorption band. The widths of the ZPH were also corrected for interference from a weak and sharp hole contribution from a state(s) that is unlikely to be involved in efficient charge-separation. The corrected ZPH widths for RC-5 and RC-6 were the same (2.3 ± 0.2 cm-1) and correspond to a charge-separation rate of (4.6 ± 0.4 ps)-1, in good agreement with a value recently measured for RC-6 by femtosecond pump-probe spectroscopy at 7 K (Greenfield, S. R.; Seibert, M.; Wasielewski, M. R. J. Phys. Chem. B 1999, 103, 8364). It appears that the removal of a peripheral Chl does not lead to structural changes in the core region of the RC that affect primary charge separation.
机译:尽管光系统II(PSII)反应中心(RC)中的主要电荷分离率一直是许多时域和频域实验的主题,但其值仍然是一个未解决的问题,尤其是在室温或室温附近。作为了解其温度依赖性的第一步,重要的是要在液氦温度下获得可靠的速率值。呈现的是从菠菜中分离的RC在5.0 K上进行的三重瓶颈燃烧(TBHB)实验的结果,其中每两个ophophytin(Pheo)分子含有六或五个叶绿素a(Chl)分子(称为RC-6和RC- 5)。 RC-5仅拥有RC的两个外围Chl之一。通过自由基离子对P680 + Pheo1-的电荷复合形成了三重态,该三重态处于填充瓶颈,其中P680是主要的电子给体,Pheo1是活性(D1)分支上的受体。在TBHB实验中,激光燃烧强度变化了2个数量级,以评估通量扩展对燃烧到P680吸收带中的零声子孔(ZPH)宽度的影响。还对ZPH的宽度进行了校正,以消除不大可能参与有效电荷分离的状态所产生的弱而尖的空穴的干扰。 RC-5和RC-6的校正ZPH宽度相同(2.3±0.2 cm-1),并且对应于(4.6±0.4 ps)-1的电荷分离速率,与最近测得的通过飞秒泵浦探针光谱在7 K下进行RC-6处理(格林菲尔德,SR;塞伯特,M .;瓦西列夫斯基,MRJ Phys.Chem.B 1999,103,8364)。似乎去除外围Chl并不会导致RC核心区域的结构变化,该结构变化影响一次电荷分离。

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