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锰(III)位点在具有e(g)(1)构型的氧化锰催化剂中对高效人工水氧化的重要作用。

Significant role of Mn(III) sites in e(g)(1) configuration in manganese oxide catalysts for efficient artificial water oxidation.

作者信息

Indra Arindam, Menezes Prashanth W, Schuster Felix, Driess Matthias

机构信息

Department of Chemistry, Metalorganics and Inorganic Materials, Technische Universität Berlin, Strasse des 17 Juni 135, Sekr. C2, D-10623 Berlin, Germany.

Department of Chemistry, Metalorganics and Inorganic Materials, Technische Universität Berlin, Strasse des 17 Juni 135, Sekr. C2, D-10623 Berlin, Germany.

出版信息

J Photochem Photobiol B. 2015 Nov;152(Pt A):156-61. doi: 10.1016/j.jphotobiol.2014.11.012. Epub 2014 Dec 13.

Abstract

Development of efficient bio-inspired water oxidation system with transition metal oxide catalyst has been considered as the one of the most challenging task in the recent years. As the oxygen evolving center of photosystem II consists of Mn4CaO5 cluster, most of the water oxidation study was converged to build up manganese oxide based catalysts. Here we report the synthesis of efficient artificial water oxidation catalysts by transferring the inactive manganese monooxide (MnO) under highly oxidizing conditions with ceric ammonium nitrate (CAN) and ozone (O3). MnO was partially oxidized to form mixed-valent manganese oxide (MnOx) with CAN whereas completely oxidized to mineral phase of ε-MnO2 (Akhtenskite) upon treatment of O3 in acidic solution, which we explore first time as a water oxidation catalyst. Chemical water oxidation, as well as the photochemical water oxidation in the presence of sacrificial electron acceptor and photosensitizer with the presented catalysts were carried out that followed the trends: MnOx>MnO2>MnO. Structural and activity correlation reveals that the presence of larger extent of Mn(III) in MnOx is the responsible factor for higher activity compared to MnO2. Mn(III) species in octahedral system with eg(1) configuration furnishes and facilitates the Mn-O and Mn-Mn bond enlargement with required structural flexibility and disorder in the manganese oxide structure which indeed facilitates water oxidation.

摘要

近年来,利用过渡金属氧化物催化剂开发高效的仿生水氧化系统一直被认为是最具挑战性的任务之一。由于光系统II的析氧中心由Mn4CaO5簇组成,大多数水氧化研究都集中在构建基于氧化锰的催化剂上。在此,我们报告了通过在高氧化条件下用硝酸铈铵(CAN)和臭氧(O3)处理无活性的一氧化锰(MnO)来合成高效的人工水氧化催化剂。MnO与CAN反应会部分氧化形成混合价态的氧化锰(MnOx),而在酸性溶液中用O3处理时则会完全氧化成ε-MnO2(阿克泰石)的矿物相,我们首次将其作为水氧化催化剂进行探索。使用所制备的催化剂进行了化学水氧化以及在牺牲电子受体和光敏剂存在下的光化学水氧化,结果呈现出以下趋势:MnOx>MnO2>MnO。结构与活性的相关性表明,与MnO2相比,MnOx中较大程度的Mn(III)的存在是其具有更高活性的原因。具有eg(1)构型的八面体体系中的Mn(III)物种提供并促进了Mn-O和Mn-Mn键的扩展,在氧化锰结构中具有所需的结构灵活性和无序性,这确实促进了水氧化。

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