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Competing charge transfer pathways at the photosystem II-electrode interface

机译:在光系统II电极界面上竞争性的电荷转移途径

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摘要

The integration of the water-oxidation enzyme photosystem II (PSII) into electrodes allows the electrons extracted from water oxidation to be harnessed for enzyme characterization and to drive novel endergonic reactions. However, PSII continues to underperform in integrated photoelectrochemical systems despite extensive optimization efforts. Here we carried out protein-film photoelectrochemistry using spinach and Thermosynechococcus elongatus PSII, and we identified a competing charge transfer pathway at the enzyme-electrode interface that short-circuits the known water-oxidation pathway. This undesirable pathway occurs as a result of photo-induced O-2 reduction occurring at the chlorophyll pigments and is promoted by the embedment of PSII in an electron-conducting fullerene matrix, a common strategy for enzyme immobilization. Anaerobicity helps to recover the PSII photoresponse and unmasks the onset potentials relating to the Q(A)/Q(B) charge transfer process. These findings impart a fuller understanding of the charge transfer pathways within PSII and at photosystem-electrode interfaces, which will lead to more rational design of pigment-containing photoelectrodes in general.
机译:将水氧化酶光系统II(PSII)集成到电极中,可以利用从水氧化中提取的电子来表征酶并驱动新型的endergonic反应。然而,尽管进行了大量的优化工作,但PSII在集成光电化学系统中的表现仍然不佳。在这里,我们使用菠菜和嗜热嗜热球菌PSII进行了蛋白质膜光电化学,并在酶-电极界面处确定了竞争性电荷转移途径,该途径使已知的水氧化途径短路。这种不希望的途径是由于在叶绿素色素上发生光诱导的O-2还原而发生的,并且由于PSII嵌入电子化富勒烯基质中而被促进,这是酶固定化的一种常见策略。厌氧性有助于恢复PSII光响应,并揭示与Q(A)/ Q(B)电荷转移过程有关的起始电位。这些发现使人们对PSII内以及光系统-电极界面处的电荷转移途径有了更全面的了解,这通常将导致含颜料的光电极的设计更加合理。

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