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首页> 外文期刊>ChemSusChem >Cobalt-Manganese-Based Spinels as Multifunctional Materials that Unify Catalytic Water Oxidation and Oxygen Reduction Reactions
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Cobalt-Manganese-Based Spinels as Multifunctional Materials that Unify Catalytic Water Oxidation and Oxygen Reduction Reactions

机译:基于钴 - 锰的尖晶板作为统一催化水氧化和氧还原反应的多功能材料

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摘要

Recently, there has been much interest in the design and development of affordable and highly efficient oxygen evolution reaction (OER) and oxygen reduction reaction (ORR) catalysts that can resolve the pivotal issues that concern solar fuels, fuel cells, and rechargeable metal-air batteries. Here we present the synthesis and application of porous CoMn2O4 and MnCo2O4 spinel microspheres as highly efficient multifunctional catalysts that unify the electrochemical OER with oxidant-driven and photocatalytic water oxidation as well as the ORR. The porous materials were prepared by the thermal degradation of the respective carbonate precursors at 400 degrees C. The as-prepared spinels display excellent performances in electrochemical OER for the cubic MnCo2O4 phase in comparison to the tetragonal CoMn2O4 material in an alkaline medium. Moreover, the oxidant-driven and photocatalytic water oxidations were performed and they exhibited a similar trend in activity to that of the electrochemical OER. Remarkably, the situation is reversed in ORR catalysis, that is, the oxygen reduction activity and stability of the tetragonal CoMn2O4 catalyst outperformed that of cubic MnCo2O4 and rivals that of benchmark Pt catalysts. The superior catalytic performance and the remarkable stability of the unifying materials are attributed to their unique porous and robust microspherical morphology and the intrinsic structural features of the spinels. Moreover, the facile access to these high-performance materials enables a reliable and cost-effective production on a large scale for industrial applications.
机译:最近,对实惠和高效的氧气进化反应(OER)和氧还原反应(ORR)催化剂的设计和开发有很多兴趣,可以解决太阳能燃料,燃料电池和可充电金属空气的枢转问题电池。在这里,我们介绍了多孔COMN2O4和MNCO2O4尖晶石微球的合成和施加作为高效的多官能催化剂,其统一电化学涂层与氧化剂驱动和光催化水氧化以及ORR。通过在400℃下的各种碳酸盐前体的热降解来制备多孔材料。与碱性介质中的四边形COMN2O4材料相比,如制备的尖晶石在电化学oer中显示出优异的电化学oer性能。此外,进行氧化剂驱动和光催化水氧化,它们在电化学伊尔的活性中表现出类似的趋势。值得注意的是,在ORR催化中逆转情况,即四方CON2O4催化剂的氧还原活性和稳定性优于立方MNCO2O4和对抗峰的基准PT催化剂。统一材料的优异催化性能和显着稳定性归因于它们独特的多孔和鲁棒的微球体形态和尖晶石的内在结构特征。此外,对这些高性能材料的容易访问能够在大规模生产工业应用方面具有可靠且经济高效的生产。

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  • 来源
    《ChemSusChem》 |2015年第1期|共8页
  • 作者单位

    Tech Univ Berlin Dept Chem Metalorgan Chem &

    Inorgan Mat D-10623 Berlin Germany;

    Tech Univ Berlin Dept Chem Metalorgan Chem &

    Inorgan Mat D-10623 Berlin Germany;

    Tech Univ Berlin Dept Chem Chem &

    Mat Engn Div Electrochem Energy Catalysis &

    Mat Sci Lab D-10623 Berlin Germany;

    Tech Univ Berlin Dept Chem Chem &

    Mat Engn Div Electrochem Energy Catalysis &

    Mat Sci Lab D-10623 Berlin Germany;

    Tech Univ Berlin Dept Chem Chem &

    Mat Engn Div Electrochem Energy Catalysis &

    Mat Sci Lab D-10623 Berlin Germany;

    Tech Univ Berlin Dept Chem Metalorgan Chem &

    Inorgan Mat D-10623 Berlin Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

    cobalt; electrochemistry; manganese; oxygen; water splitting;

    机译:钴;电化学;锰;氧气;水分裂;

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