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首页> 外文期刊>Chemistry: A European journal >Toward Functional Type III [Fe]-Hydrogenase Biomimics for H-2 Activation: Insights from Computation
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Toward Functional Type III [Fe]-Hydrogenase Biomimics for H-2 Activation: Insights from Computation

机译:走向功能性III型[Fe]-氢化酶仿生体以进行H-2激活:计算的启示

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摘要

The chemistry of [Fe]-hydrogenase has attracted significant interest due to its ability to activate molecular hydrogen. The intriguing properties of this enzyme have prompted the synthesis of numerous small molecule mimics aimed at activating H-2. Despite considerable effort, a majority of these compounds remain nonfunctional for hydrogenation reactions. By using a recently synthesized model as an entry point, seven biomimetic complexes have been examined through DFT computations to probe the influence of ligand environment on the ability of a mimic to bind and split H-2. One mimic, featuring a bidentate diphosphine group incorporating an internal nitrogen base, was found to have particularly attractive energetics, prompting a study of the role played by the proton/hydride acceptor necessary to complete the catalytic cycle. Computations revealed an experimentally accessible energetic pathway involving a benzaldehyde proton/hydride acceptor and the most promising catalyst.
机译:[Fe]-氢化酶的化学性质因其激活分子氢的能力而引起了人们的极大兴趣。这种酶的迷人特性促使人们合成了许多旨在激活H-2的小分子模拟物。尽管付出了巨大的努力,但是这些化合物中的大多数对于氢化反应仍不起作用。通过使用最近合成的模型作为切入点,已通过DFT计算检查了七个仿生复合物,以探索配体环境对模拟物结合和分裂H-2的能力的影响。发现一种模拟物,其具有结合有内部氮碱的双齿二膦基团,具有特别吸引人的能量学,促使人们对完成催化循环所必需的质子/氢化物受体所起的作用进行了研究。计算表明,实验上可访问的能量途径涉及苯甲醛质子/氢化物受体和最有希望的催化剂。

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