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硫醇桥联双核钌和铁配合物作为在质子溶剂中分子氢气氧化的稳定高效催化剂。

Thiolate-bridged dinuclear ruthenium and iron complexes as robust and efficient catalysts toward oxidation of molecular dihydrogen in protic solvents.

机构信息

†Institute of Engineering Innovation, School of Engineering, The University of Tokyo, Yayoi, Bunkyo-ku, Tokyo 113-8656, Japan.

‡Faculty of Pharmaceutical Sciences, Hoshi University, Ebara, Shinagawa-ku, Tokyo 142-8501, Japan.

出版信息

J Am Chem Soc. 2015 Apr 1;137(12):4173-82. doi: 10.1021/jacs.5b00584. Epub 2015 Mar 24.

Abstract

Thiolate-bridged dinuclear ruthenium and iron complexes are found to work as efficient catalysts toward oxidation of molecular dihydrogen in protic solvents such as water and methanol under ambient reaction conditions. Heterolytic cleavage of the coordinated molecular dihydrogen at the dinuclear complexes and the sequential oxidation of the produced hydride complexes are involved as key steps to promote the present catalytic reaction. The catalytic activity of the dinuclear complexes toward the chemical oxidation of molecular dihydrogen achieves up to 10000 TON (turnover number), and electrooxidation of molecular dihydrogen proceeds quite rapidly. The result of the density functional theory (DFT) calculation on the reaction pathway indicates that a synergistic effect between the two ruthenium atoms plays an important role to realize the catalytic oxidation of molecular dihydrogen efficiently. The present dinuclear ruthenium complex is found to work as an efficient organometallic anode catalyst for the fuel cell. It is noteworthy that the present dinuclear complex worked not only as an effective catalyst toward chemical and electrochemical oxidation of molecular dihydrogen but also as a good anode catalyst for the fuel cell. We consider that the result described in this paper provides useful and valuable information to develop highly efficient and low-cost transition metal complexes as anode catalysts in the fuel cell.

摘要

硫醇桥联双核钌和铁配合物被发现是在质子溶剂(如水和甲醇)中在环境反应条件下有效催化分子氢气氧化的催化剂。双核配合物中配位分子氢气的异裂以及随后产生的氢化物配合物的顺序氧化是促进本催化反应的关键步骤。双核配合物对分子氢气的化学氧化的催化活性达到高达 10000 TON(转化数),并且分子氢气的电氧化进行得相当快。对反应途径的密度泛函理论(DFT)计算的结果表明,两个钌原子之间的协同作用对于有效地实现分子氢气的催化氧化起着重要作用。所研究的双核钌配合物被发现是燃料电池的有效有机金属阳极催化剂。值得注意的是,所研究的双核配合物不仅是分子氢气的化学和电化学氧化的有效催化剂,而且也是燃料电池的良好阳极催化剂。我们认为,本文所描述的结果为开发高效、低成本的过渡金属配合物作为燃料电池中的阳极催化剂提供了有用和有价值的信息。

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