Cheng Yu, Pei Yu, Zhuang Peiyuan, Chu Hang, Cao Yudong, Smith Will, Dong Pei, Shen Jianfeng, Ye Mingxin, Ajayan Pulickel M
Institute of Special Materials and Technology, Fudan University, Shanghai, 200433, China.
Department of Mechanical Engineering, George Mason University, Fairfax, VA, 22030, USA.
Small. 2019 Dec;15(49):e1904681. doi: 10.1002/smll.201904681. Epub 2019 Oct 28.
The development of earth-abundant, low cost, and versatile electrocatalysts for producing hydrogen from water electrolysis is still challenging. Herein, based on high hydrogen evolution reaction (HER) activity of transition metal phosphides, a CoP nanowire decorated with copper phosphides (denoted as CuP ) nanodots structures synthesized through a simple and easily scalable precursor-transformation strategy is reported as a highly efficient HER catalyst. By decorating with CuP nanodots, the optimized CoP nanowires electrode exhibits excellent catalytic activity and long-term durability for HER in alkaline conditions, achieving a low overpotential of 49.5 mV at a geometrical catalytic current density of 10 mA cm with a small Tafel slope of 58.0 mV dec , while also performing quite well in neutral and acidic media. Moreover, its overall performance exceeds most of the reported state-of-the-art catalysts, especially under high current density of 100 mA cm , demonstrating its potential as a promising versatile pH universal electrocatalyst for efficient water electrolysis. These results indicate that the incorporation of earth-abundant stable element copper can significantly enhance catalytic activity, which widens the application range of copper and provides a new path for design and selection of HER catalysts.
开发用于水电解制氢的储量丰富、成本低廉且用途广泛的电催化剂仍然具有挑战性。在此,基于过渡金属磷化物的高析氢反应(HER)活性,报道了一种通过简单且易于扩展的前驱体转化策略合成的、由磷化铜(表示为CuP )纳米点结构修饰的CoP纳米线,作为一种高效的HER催化剂。通过用CuP纳米点修饰,优化后的CoP纳米线电极在碱性条件下对HER表现出优异的催化活性和长期耐久性,在几何催化电流密度为10 mA cm 时实现了49.5 mV的低过电位,塔菲尔斜率为58.0 mV dec ,同时在中性和酸性介质中也表现良好。此外,其整体性能超过了大多数已报道的先进催化剂,尤其是在100 mA cm 的高电流密度下,证明了其作为一种有前景的通用pH值通用电催化剂用于高效水电解的潜力。这些结果表明,引入储量丰富的稳定元素铜可以显著提高催化活性,这拓宽了铜的应用范围,并为HER催化剂的设计和选择提供了一条新途径。