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Unification of Catalytic Water Oxidation and Oxygen Reduction Reactions: Amorphous Beat Crystalline Cobalt Iron Oxides

机译:催化水氧化和氧还原反应的统一:非晶态的节拍结晶钴铁氧化物

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摘要

Catalytic water splitting to hydrogen and oxygen is considered as one of the convenient routes for the sustainable energy conversion. Bifunctional catalysts for the electrocatalytic oxygen reduction reaction (ORR) and the oxygen evolution reaction (OER) are pivotal for the energy conversion and storage, and alternatively, the photochemical water oxidation in biomimetic fashion is also considered as the most useful way to convert solar energy into chemical energy. Here we present a facile solvothermal route to control the synthesis of amorphous and crystalline cobalt iron oxides by controlling the crystallinity of the materials with changing solvent and reaction time and further utilize these materials as multifunctional catalysts for the unification of photochemical and electrochemical water oxidation as well as for the oxygen reduction reaction. Notably, the amorphous cobalt iron oxide produces superior catalytic activity over the crystalline one under photochemical and electrochemical water oxidation and oxygen reduction conditions.
机译:催化水分解为氢和氧被认为是实现可持续能源转化的便捷途径之一。用于电催化氧还原反应(ORR)和氧释放反应(OER)的双功能催化剂对于能量转换和存储至关重要,或者,仿生方式的光化学水氧化也被认为是转换太阳能的最有用方法转化为化学能。在这里,我们提出了一种容易的溶剂热途径,通过改变溶剂和反应时间来控制材料的结晶度,从而控制无定形和结晶钴铁氧化物的合成,并进一步将这些材料用作多功能催化剂,以实现光化学和电化学水氧化的统一至于氧还原反应。值得注意的是,在光化学和电化学水氧化和氧还原条件下,无定形钴铁氧化物产生的催化活性优于晶体。

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  • 来源
    《Journal of the American Chemical Society》 |2014年第50期|17530-17536|共7页
  • 作者单位

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

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

    The Electrochemical Energy, Catalysis, and Materials Science Group, Department of Chemistry, Technische Universitaet Berlin, Strasse des 17 Juni 124, Sekr. TC3, 10623 Berlin, Germany;

    The Electrochemical Energy, Catalysis, and Materials Science Group, Department of Chemistry, Technische Universitaet Berlin, Strasse des 17 Juni 124, Sekr. TC3, 10623 Berlin, Germany;

    Applied Physics and Sensors, Brandenburg University of Technology Cottbus, Konrad Wachsmann Allee 17, 03046 Cottbus, Germany;

    Applied Physics and Sensors, Brandenburg University of Technology Cottbus, Konrad Wachsmann Allee 17, 03046 Cottbus, Germany;

    Applied Physics and Sensors, Brandenburg University of Technology Cottbus, Konrad Wachsmann Allee 17, 03046 Cottbus, Germany;

    The Electrochemical Energy, Catalysis, and Materials Science Group, Department of Chemistry, Technische Universitaet Berlin, Strasse des 17 Juni 124, Sekr. TC3, 10623 Berlin, Germany,Ertl Center for Electrochemistry and Catalysis, Gwangju Institute of Science and Technology, 500-712 Gwangju, South Korea;

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

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