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Synthesis of the H-cluster framework of iron-only hydrogenase

机译:纯铁氢化酶H簇骨架的合成

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The metal- sulphur active sites of hydrogenases catalyse hydrogen evolution or uptake at rapid rates. Understanding the structure and function of these active sites - through mechanistic studies of hydrogenases(1 - 4), synthetic assemblies(5 - 12) and in silico models(13 - 15) - will help guide the design of new materials for hydrogen production or uptake(16). Here we report the assembly of the iron- sulphur framework of the active site of iron- only hydrogenase ( the H- cluster), and show that it functions as an electrocatalyst for proton reduction. Through linking of a di- iron subsite to a {4Fe4S} cluster, we achieve the first synthesis of a metallosulphur cluster core involved in small- molecule catalysis. In addition to advancing our understanding of the natural biological system, the availability of an active, free- standing analogue of the H- cluster may enable us to develop useful electrocatalytic materials for application in, for example, reversible hydrogen fuel cells. ( Platinum is currently the preferred electrocatalyst for such applications, but is expensive, limited in availability and, in the long term, unsustainable(17).)
机译:氢化酶的金属-硫活性位点催化氢的释放或快速吸收。通过对加氢酶(1-4),合成组件(5-12)和计算机模拟模型(13-15)的机理研究,了解这些活性位点的结构和功能,将有助于指导用于生产氢或氢的新材料的设计。摄取(16)。在这里,我们报道了仅铁氢化酶(H-簇)的活性位点的铁-硫骨架的组装,并显示了其作为质子还原的电催化剂。通过将二价铁亚基连接到{4Fe4S}团簇,我们实现了涉及小分子催化的金属硫团簇核的首次合成。除了增进我们对自然生物系统的理解之外,H-簇的活性,自立式类似物的可用性可能使我们能够开发有用的电催化材料,以用于例如可逆的氢燃料电池。 (铂金目前是此类应用的首选电催化剂,但价格昂贵,可用性有限且长期而言不可持续(17)。)

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