Wang Yuanqiang, Wang Ting, Yang Mengru, Rui Yichuan, Xue Zhili, Zhu Haozhen, Wang Chengjie, Li Jing, Chen Binling
College of Chemistry and Chemical Engineering, Shanghai University of Engineering Science, Shanghai 201620, People's Republic of China.
Dalton Trans. 2023 Aug 22;52(33):11526-11534. doi: 10.1039/d3dt01367g.
Regulating the structural and interfacial properties of transition metal phosphides (TMPs) by coupling carbon-based materials with large surface areas to enhance hydrogen evolution reaction (HER) performance presents significant progress for water splitting technology. Herein, we constructed a composite substrate of a three-dimensional porous graphene oxide matrix (3D-GO) embedded in nickel foam (NF) to grow a CoP electrocatalyst. Well-defined gladiolus-like CoP nanowire arrays tightly anchored on the substrate show enhanced electrochemical characteristics for the hydrogen evolution reaction (HER) based on the promoting roles of 3D porous reduced GO (3D-rGO) derived from 3D-GO, which promotes the dispersion of active components, improves the rate of electron transfer, and facilitates the transport of water molecules. As a result, the obtained CoP@3D-rGO/NF electrode exhibits superior HER activity in 1.0 M KOH media, achieving overpotentials of 36.5 and 264.7 mV at current densities of 10 and 100 mA cm, respectively. The electrode also has a low Tafel slope of 55.5 mV dec, a large electrochemical surface area, and small charge-transfer resistance, further revealing its mechanism of high intrinsic activity. Moreover, the electrode exhibits excellent HER stability and durability without surface morphology and chemical state changes.
通过将具有大表面积的碳基材料与过渡金属磷化物(TMPs)耦合来调节其结构和界面性质,以提高析氢反应(HER)性能,这为水分解技术带来了重大进展。在此,我们构建了一种嵌入泡沫镍(NF)中的三维多孔氧化石墨烯基质(3D-GO)复合基底,用于生长CoP电催化剂。基于源自3D-GO的三维多孔还原氧化石墨烯(3D-rGO)的促进作用,紧密锚定在基底上的轮廓清晰的剑兰状CoP纳米线阵列显示出增强的析氢反应(HER)电化学特性,3D-rGO促进了活性成分的分散,提高了电子转移速率,并促进了水分子的传输。结果,所制备的CoP@3D-rGO/NF电极在1.0 M KOH介质中表现出优异的HER活性,在电流密度为10和100 mA cm时的过电位分别为36.5和264.7 mV。该电极还具有55.5 mV dec的低塔菲尔斜率、大的电化学表面积和小的电荷转移电阻,进一步揭示了其高本征活性的机制。此外,该电极表现出优异的HER稳定性和耐久性,且表面形态和化学状态没有变化。