Jilie Kong , Wenliang Sun , Xingliang Wu , Jiaqi Deng , Zhongqing Lu , Yuri Lvov , Roel Z.B Desamero , Harry A Frank , James F Rusling
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引用次数: 20
摘要
本文观察了野生型球形红杆菌在聚阳离子夹层膜中进行光合反应中心的直接可逆电子转移。通过可逆CV或SWV峰精确测定了第一主供体氧化还原对P/P+的氧化还原电位E0′=0.46 V vs. NHE,与光学氧化还原滴定法得到的结果非常接近。发现薄膜中的反应中心(RC)以一种有序的方式重组,RC的取向有利于薄膜中的电子转移。因此,在这种人造仿生薄膜中,蛋白质的电活性似乎被打开了。此外,薄膜中的RC具有光诱导氧化还原峰波动,表明该薄膜中的RC处于完整的功能状态。氧化还原峰也发现依赖于pH值,这意味着质子耦合电子转移发生在薄膜中。随着电化学驱动力的变化,观察到电荷复合。在不同脉冲高度和频率下的SWV实验数据中,假设标准电位分散的电极膜上有几种电活性位点的电化学模型成功拟合。
Fast reversible electron transfer for photosynthetic reaction center from wild type Rhodobacter sphaeroides re-constituted in polycation sandwiched monolayer film
Direct reversible electron transfer for photosynthetic reaction center from wild type Rhodobacter sphaeroides re-constituted in polycation sandwiched monolayer film was observed in this work. The redox potential E0′=0.46 V vs. NHE for first primary donor redox couple P/P+ was accurately measured from reversible CV or SWV peaks, which were quite close to those obtained from optic redox titration method. Reaction center (RC) in film was found re-constituted in such an ordered way that the orientation of RC favored the electron transfer in film. Thus, the protein electroactivity seems to be turned on in this artificial biomimic thin film. Furthermore, RC in the film features a photo-induced redox-peak fluctuation, suggesting an intact and functional state for RC in such film. Redox peaks were also found dependent of pH, implying a proton-coupled electron transfer occurring in film. Charge recombination was observed accompanied with change of electrochemical driving force. Electrochemical model assuming several classes of electroactive sites in the films on the electrode with a dispersion of standard potentials successfully fits SWV experimental data at different pulse height and frequency.