氧化还原
电子转移
纳米晶
纳米技术
硫系化合物
材料科学
催化作用
化学
化学物理
电子传输链
半导体
光化学
光电子学
有机化学
生物化学
冶金
作者
James K. Utterback,Jesse L. Ruzicka,Helena R. Keller,Lauren M. Pellows,Gordana Duković
标识
DOI:10.1146/annurev-physchem-050317-014232
摘要
This review summarizes progress in understanding electron transfer from photoexcited nanocrystals to redox enzymes. The combination of the light-harvesting properties of nanocrystals and the catalytic properties of redox enzymes has emerged as a versatile platform to drive a variety of enzyme-catalyzed reactions with light. Transfer of a photoexcited charge from a nanocrystal to an enzyme is a critical first step for these reactions. This process has been studied in depth in systems that combine Cd-chalcogenide nanocrystals with hydrogenases. The two components can be assembled in close proximity to enable direct interfacial electron transfer or integrated with redox mediators to transport charges. Time-resolved spectroscopy and kinetic modeling have been used to measure the rates and efficiencies of the electron transfer. Electron transfer has been described within the framework of Marcus theory, providing insights into the factors that can be used to control the photochemical activity of these biohybrid systems. The range of potential applications and reactions that can be achieved using nanocrystal–enzyme systems is expanding, and numerous fundamental and practical questions remain to be addressed.
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