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涉及与质子还原和氢氧化相关的氢化物形成的 [FeFe]-氢化酶模型的反应。

Reactions of [FeFe]-hydrogenase models involving the formation of hydrides related to proton reduction and hydrogen oxidation.

机构信息

State Key Laboratory of Fine Chemicals, DUT-KTH Joint Education and Research Center on Molecular Devices, Dalian University of Technology (DUT), Dalian 116024, China.

出版信息

Dalton Trans. 2013 Sep 14;42(34):12059-71. doi: 10.1039/c3dt51371h. Epub 2013 Jul 11.

Abstract

[FeFe]-hydrogenases are enzymes in nature that catalyze the reduction of protons and the oxidation of H2 at neutral pH with remarkably high activities and incredibly low overpotential. Structural and functional biomimicking of the active site of [FeFe]-hydrogenases can provide helpful hints for elucidating the mechanism of H2 evolution and uptake at the [FeFe]-hydrogenase active site and for designing bioinspired catalysts to replace the expensive noble metal catalysts for H2 generation and uptake. This perspective focuses on the recent progress in the formation and reactivity of iron hydrides closely related to the processes of proton reduction and hydrogen oxidation mediated by diiron dithiolate complexes. The second section surveys the bridging and terminal hydride species formed from various diiron complexes as well as the intramolecular proton transfer. The very recent progress in H2 activation by diiron dithiolate models are reviewed in the third section. In the concluding remarks and outlook, the differences in structure and catalytic mechanism between the synthetic models and the native [FeFe]-H2ase active site are compared and analyzed, which may cause the need for a significantly larger driving force and may lead to lower activities of synthetic models than the [FeFe]-H2ases for H2 generation and uptake.

摘要

[FeFe]-氢化酶是自然界中能够在中性 pH 值下以极高的活性和极低的超电势催化质子还原和 H2 氧化的酶。对[FeFe]-氢化酶活性中心的结构和功能进行仿生模拟,可以为阐明[FeFe]-氢化酶活性中心的 H2 演化和摄取机制提供有用的线索,并设计出仿生催化剂来替代昂贵的贵金属催化剂用于 H2 的生成和摄取。本观点重点关注与二铁二硫代配合物介导的质子还原和氢氧化过程密切相关的铁氢化物的形成和反应性的最新进展。第二节调查了各种二铁配合物形成的桥接和末端氢化物物种以及分子内质子转移。在第三节中回顾了二铁二硫代配合物模型对 H2 的活化的最新进展。在结论和展望中,对合成模型和天然[FeFe]-H2ase 活性中心之间的结构和催化机制的差异进行了比较和分析,这可能导致需要更大的驱动力,并且可能导致合成模型的活性低于[FeFe]-H2ase 用于 H2 的生成和摄取。

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