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首页> 外文期刊>Advanced energy materials >Surface Engineering of 3D Gas Diffusion Electrodes for High-Performance H_2 Production with Nonprecious Metal Catalysts
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Surface Engineering of 3D Gas Diffusion Electrodes for High-Performance H_2 Production with Nonprecious Metal Catalysts

机译:3D气体扩散电极的表面工程,用于非贵金属催化剂的高性能H_2生产

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In this work, a methodology is demonstrated to engineer gas diffusion electrodes for nonprecious metal catalysts. Highly active transition metal phosphides are prepared on carbon-based gas diffusion electrodes with low catalyst loadings by modifying the O/C ratio at the surface of the electrode. These nonprecious metal catalysts yield extraordinary performance as measured by low overpotentials (51 mV at -10 mA cm(-2)), unprecedented mass activities (>800 A g(-1) at 100 mV overpotential), high turnover frequencies (6.96 H-2 s(-1) at 100 mV overpotential), and high durability for a precious metal-free catalyst in acidic media. It is found that a high O/C ratio induces a more hydrophilic surface directly impacting the morphology of the CoP catalyst. The improved hydrophilicity, stemming from introduced oxyl groups on the carbon electrode, creates an electrode surface that yields a well-distributed growth of cobalt electrodeposits and thus a well-dispersed catalyst layer with high surface area upon phosphidation. This report demonstrates the high-performance achievable by CoP at low loadings which facilitates further cost reduction, an important part of enabling the large-scale commercialization of non-platinum group metal catalysts. The fabrication strategies described herein offer a pathway to lower catalyst loading while achieving high efficiency and promising stability on a 3D electrode.
机译:在这项工作中,论证了一种为非贵金属催化剂设计气体扩散电极的方法。通过改变电极表面的O / C比,可以在催化剂负载量较低的碳基气体扩散电极上制备高活性的过渡金属磷化物。这些非贵金属催化剂具有超低电势(在-10 mA cm(-2)时为51 mV),前所未有的质量活动(在100 mV超电势下> 800 A g(-1)),高周转频率(6.96 H),具有非凡的性能-2 s(-1)在100 mV超电势下),对于酸性介质中的无贵金属催化剂具有高耐久性。发现高的O / C比引起更亲水的表面,直接影响CoP催化剂的形态。源自碳电极上引入的羟基的改善的亲水性产生了一种电极表面,该电极表面产生了分布良好的钴电沉积物生长,从而在磷化后形成了具有高表面积的良好分散的催化剂层。该报告证明了CoP在低负荷下可获得的高性能,这有助于进一步降低成本,这是使非铂族金属催化剂大规模商业化的重要组成部分。本文所述的制造策略提供了降低催化剂负载量的途径,同时在3D电极上实现了高效率和有希望的稳定性。

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