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硅-杂芳族[FeFe]氢化酶模型配合物:对质子化、电化学性质和分子结构的深入了解。

Silicon-Heteroaromatic [FeFe] hydrogenase model complexes: insight into protonation, electrochemical properties, and molecular structures.

作者信息

Goy Roman, Bertini Luca, Görls Helmar, De Gioia Luca, Talarmin Jean, Zampella Giuseppe, Schollhammer Philippe, Weigand Wolfgang

机构信息

Institut für Anorganische und Analytische Chemie, Friedrich-Schiller-Universität, Humboldtstraße 8, 07743 Jena (Germany), Fax: (+49) 3641-948102.

出版信息

Chemistry. 2015 Mar 23;21(13):5061-73. doi: 10.1002/chem.201406087. Epub 2015 Feb 17.

Abstract

To learn from Nature how to create an efficient hydrogen-producing catalyst, much attention has been paid to the investigation of structural and functional biomimics of the active site of [FeFe]-hydrogenase. To understand their catalytic activities, the μ-S atoms of the dithiolate bridge have been considered as possible basic sites during the catalytic processes. For this reason, a series of [FeFe]-H2 ase mimics have been synthesized and characterized. Different [FeFe]-hydrogenase model complexes containing bulky Si-heteroaromatic systems or fluorene directly attached to the dithiolate moiety as well as their mono-PPh3 -substituted derivatives have been prepared and investigated in detail by spectroscopic, electrochemical, X-ray diffraction, and computational methods. The assembly of the herein reported series of complexes shows that the μ-S atoms can be a favored basic site in the catalytic process. Small changes in the (hetero)-aromatic system of the dithiolate moiety are responsible for large differences in their structures. This was elucidated in detail by DFT calculations, which were consistent with the experimental results.

摘要

为了从自然界中学习如何创造一种高效的产氢催化剂,人们对[FeFe] -氢化酶活性位点的结构和功能仿生体进行了大量研究。为了理解它们的催化活性,二硫醇盐桥的μ-S原子被认为是催化过程中可能的碱性位点。因此,一系列[FeFe] -氢化酶模拟物被合成并进行了表征。不同的含有庞大硅杂芳族体系或直接连接到二硫醇盐部分的芴的[FeFe] -氢化酶模型配合物,以及它们的单-三苯基膦取代衍生物,已经通过光谱、电化学、X射线衍射和计算方法进行了详细的制备和研究。本文报道的一系列配合物的组装表明,μ-S原子在催化过程中可能是一个有利的碱性位点。二硫醇盐部分的(杂)芳族体系的微小变化导致了它们结构上的巨大差异。这通过密度泛函理论计算得到了详细阐明,计算结果与实验结果一致。

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