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Structure–Activity Relationships of HierarchicalThree-Dimensional Electrodes with Photosystem II for SemiartificialPhotosynthesis

机译:层次结构与活动的关系具有Photosystem II的半人工用三维电极光合作用

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摘要

Semiartificial photosynthesis integrates photosynthetic enzymes with artificial electronics, which is an emerging approach to reroute the natural photoelectrogenetic pathways for sustainable fuel and chemical synthesis. However, the reduced catalytic activity of enzymes in bioelectrodes limits the overall performance and further applications in fuel production. Here, we show new insights into factors that affect the photoelectrogenesis in a model system consisting of photosystem II and three-dimensional indium tin oxide and graphene electrodes. Confocal fluorescence microscopy and in situ surface-sensitive infrared spectroscopy are employed to probe the enzyme distribution and penetration within electrode scaffolds of different structures, which is further correlated with protein film-photoelectrochemistry to establish relationships between the electrode architecture and enzyme activity. We find that the hierarchical structure of electrodes mainly influences the protein loading but not the enzyme activity. Photoactivity is more limited by light intensity and electronic communication at the biointerface.This study provides guidelines for maximizing the performance of semiartificialphotosynthesis and also presents a set of methodologies to probe thephotoactive biofilms in three-dimensional electrodes.
机译:半人工光合作用将光合作用酶与人工电子技术整合在一起,这是一种新兴的方法,可以重新路由自然的光生电途径,以实现可持续的燃料和化学合成。但是,生物电极中酶催化活性的降低限制了整体性能以及在燃料生产中的进一步应用。在这里,我们展示了影响光生电的因素的新见解,该光生电在由光系统II和三维氧化铟锡和石墨烯电极组成的模型系统中。共聚焦荧光显微镜和原位表面敏感的红外光谱用于探测不同结构的电极支架内酶的分布和渗透,进一步将其与蛋白质膜光电化学相关联,以建立电极结构与酶活性之间的关系。我们发现电极的层次结构主要影响蛋白质负载,但不影响酶活性。光活性受到光强度和生物界面电子通讯的限制。这项研究为最大限度地提高半人工关节的性能提供了指导光合作用,并提出了一套方法来探测三维电极中的光敏生物膜。

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