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Rationally Designed Hierarchically Structured Tungsten Nitride and Nitrogen‐Rich Graphene‐Like Carbon Nanocomposite as Efficient Hydrogen Evolution Electrocatalyst

机译:合理设计的分层结构氮化钨和富氮石墨烯样碳纳米复合材料作为高效的析氢电催化剂

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摘要

Practical application of hydrogen production from water splitting relies strongly on the development of low‐cost and high‐performance electrocatalysts for hydrogen evolution reaction (HER). The previous researches mainly focused on transition metal nitrides as HER catalysts due to their electrical conductivity and corrosion stability under acidic electrolyte, while tungsten nitrides have reported poorer activity for HER. Here the activity of tungsten nitride is optimized through rational design of a tungsten nitride–carbon composite. More specifically, tungsten nitride (WNx) coupled with nitrogen‐rich porous graphene‐like carbon is prepared through a low‐cost ion‐exchange/molten‐salt strategy. Benefiting from the nanostructured WNx, the highly porous structure and rich nitrogen dopant (9.5 at%) of the carbon phase with high percentage of pyridinic‐N (54.3%), and more importantly, their synergistic effect, the composite catalyst displays remarkably high catalytic activity while maintaining good stability. This work highlights a powerful way to design more efficient metal–carbon composites catalysts for HER.
机译:分解水制氢的实际应用在很大程度上依赖于低成本,高性能的氢析出反应(HER)电催化剂的开发。先前的研究由于其在酸性电解质下的导电性和腐蚀稳定性而主要集中在过渡金属氮化物作为HER催化剂上,而氮化钨报道的HER活性较差。通过合理设计氮化钨-碳复合材料,可以优化氮化钨的活性。更具体地说,氮化钨(WNx)和富氮多孔石墨烯样碳是通过低成本的离子交换/熔融盐策略制备的。得益于纳米结构的WNx,碳相的高度多孔结构和富氮掺杂剂(9.5 at%)和高比例的吡啶-N(54.3%),更重要的是,它们的协同效应使复合催化剂显示出了很高的催化活性。活动,同时保持良好的稳定性。这项工作突显了设计更有效的HER金属-碳复合催化剂的有效方法。

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