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Maximizing the efficiency of ferritin as a photocatalyst for applications in an artificial photosynthesis system

机译:最大限度地提高铁蛋白作为光催化剂在人工光合作用系统中的应用效率

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Alternate fuel sources are becoming increasingly important as the reserve of fossil fuels decrease. We describe a photosynthesis mimic that is capable of extracting electrons from sacrificial electron donors. This model is based on the bio-photo-catalyst ferritin. Ferritin is an iron storage protein that naturally sequesters ferrihydrite inside a spherical 12 nm protein shell. Ferrihydrite is a semi-conductor that functions as a photo-catalyst in aqueous solvents. Ferritin has been shown to photoreduce Au~(3+) to form Au(0) nanoparticles. Citrate acts as a sacrificial electron donor to supply electrons for the photoreduction. We describe studies designed to understand the mechanism of this catalyst in order to improve the efficiency of the reaction. We have developed a spectrophotometric assay to simultaneously illuminate the sample and kinetically monitor the formation of products of Au~(3+) reduction. We report that buffers containing sulfur significantly increase the rate of the reactions. Control reactions with colloidal ferrihydrite nanoparticles do not catalyze the photochemical reaction, but produce a black precipitate indicating that the protein shell has an important function in nanoparticle formation.
机译:随着化石燃料储备的减少,替代燃料来源变得越来越重要。我们描述了一种能够从牺牲电子供体中提取电子的光合作用模拟物。该模型基于生物光催化剂铁蛋白。铁蛋白是一种铁存储蛋白,可自然地将亚铁酸盐螯合在球形12 nm蛋白壳内。水铁矿是一种半导体,在水性溶剂中起光催化剂的作用。铁蛋白已经显示出光还原Au〜(3+)形成Au(0)纳米粒子。柠檬酸盐充当牺牲电子供体,以提供用于光还原的电子。我们描述了旨在理解该催化剂的机理以提高反应效率的研究。我们开发了一种分光光度测定法,以同时照亮样品并动态监测Au〜(3+)还原产物的形成。我们报告说,含硫的缓冲液可显着提高反应速度。胶体亚铁水合物纳米粒子的对照反应不会催化光化学反应,但会产生黑色沉淀,表明蛋白质壳在纳米粒子的形成中具有重要作用。

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