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首页> 外文期刊>Energy & environmental science >Correlating the hydrogen evolution reaction activity in alkaline electrolytes with the hydrogen binding energy on monometallic surfaces
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Correlating the hydrogen evolution reaction activity in alkaline electrolytes with the hydrogen binding energy on monometallic surfaces

机译:将碱性电解质中的氢释放反应活性与单金属表面上的氢结合能相关

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摘要

The slow reaction kinetics of the hydrogen evolution and oxidation reactions (HER/HOR) on platinum in alkaline electrolytes hinders the development of alkaline electrolysers, solar hydrogen cells and alkaline fuel cells. A fundamental understanding of the exchange current density of the HER/HOR in alkaline media is critical for the search and design of highly active electrocatalysts. By studying the HER on a series of monometallic surfaces, we demonstrate that the HER exchange current density in alkaline solutions can be correlated with the calculated hydrogen binding energy (HBE) on the metal surfaces via a volcano type of relationship. The HER activity varies by several orders of magnitude from Pt at the peak of the plot to W and Au located on the bottom of each side of the plot, similar to the observation in acids. Such a correlation suggests that the HBE can be used as a descriptor for identifying electrocatalysts for HER/HOR in alkaline media, and that the HER exchange current density can be tuned by modifying the surface chemical properties.
机译:在碱性电解质中铂上的氢释放和氧化反应(HER / HOR)的缓慢反应动力学阻碍了碱性电解槽,太阳能氢电池和碱性燃料电池的发展。对HER / HOR在碱性介质中的交换电流密度的基本了解对于搜索和设计高活性电催化剂至关重要。通过研究一系列单金属表面上的HER,我们证明了碱性溶液中的HER交换电流密度可以通过火山类型的关系与金属表面上计算的氢结合能(HBE)相关。 HER活性从曲线图的峰值处的Pt到曲线图两边底部的W和Au都变化了几个数量级,类似于在酸中的观察结果。这种相关性表明,HBE可以用作鉴定碱性介质中HER / HOR的电催化剂的描述子,并且可以通过改变表面化学性质来调节HER交换电流密度。

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  • 来源
    《Energy & environmental science》 |2013年第5期|1509-1512|共4页
  • 作者单位

    Department of Chemical and Biomolecular Engineering, University of Delaware, 150 Academy Street, Newark, DE 19716, USA;

    Department of Chemical and Biomolecular Engineering, University of Delaware, 150 Academy Street, Newark, DE 19716, USA;

    Department of Chemical Engineering, Columbia University, 500 West 120th Street, New York, NY 10027, USA;

    Department of Chemical and Biomolecular Engineering, University of Delaware, 150 Academy Street, Newark, DE 19716, USA;

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