Qi Luoluo, Huang Zhiyang, Liao Miao, Wang Lei, Wang Lixia, Gao Mingcheng, Taylor Isimjan Tayirjan, Yang Xiulin
Guangxi Key Laboratory of Low Carbon Energy Materials School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin, 541004, China.
Department of Food and Environment Engineering, Chuzhou Polytechnic, Chuzhou, 239000, China.
Chemistry. 2023 Oct 9;29(56):e202301521. doi: 10.1002/chem.202301521. Epub 2023 Sep 4.
The development of hydrogen evolution reaction (HER) catalysts with high performance under large current density is still a challenge. Introducing P vacancies in heterostructure is an appealing strategy to enhance HER kinetics. This study investigates a CoP-FeP heterostructure catalyst with abundant P vacancies (Vp-CoP-FeP/NF) on nickel foam (NF), which was prepared using dipping and phosphating treatment. The optimized Vp-CoP-FeP catalyst exerted prominent HER catalytic capability, requiring an ultra-low overpotential (58 mV @ 10 mA cm ) and displaying robust durability (50 h @ 200 mA cm ) in 1.0 M KOH solution. Furthermore, the catalyst demonstrated superior overall water splitting activity as cathode, demanding only cell voltage of 1.76 V at 200 mA cm , outperforming Pt/C/NF || RuO /NF . The catalyst's outstanding performance can be attributed to the hierarchical structure of porous nanosheets, abundant P vacancies, and synergistic effect between CoP and FeP components, which promote water dissociation and H* adsorption and desorption, thereby synergically accelerating HER kinetics and enhancing HER activity. This study demonstrates the potential of HER catalysts with phosphorus-rich vacancies that can work under industrial-scale current density, highlighting the importance of developing durable and efficient catalysts for hydrogen production.
开发在大电流密度下具有高性能的析氢反应(HER)催化剂仍然是一项挑战。在异质结构中引入磷空位是增强HER动力学的一种有吸引力的策略。本研究考察了一种在泡沫镍(NF)上具有丰富磷空位的CoP-FeP异质结构催化剂(Vp-CoP-FeP/NF),它是通过浸渍和磷化处理制备的。优化后的Vp-CoP-FeP催化剂表现出卓越的HER催化能力,在1.0 M KOH溶液中需要超低的过电位(10 mA cm时为58 mV),并显示出强大的耐久性(200 mA cm时为50 h)。此外,该催化剂作为阴极表现出优异的全水解活性,在200 mA cm时仅需1.76 V的电池电压,优于Pt/C/NF || RuO /NF。该催化剂的优异性能可归因于多孔纳米片的分级结构、丰富的磷空位以及CoP和FeP组分之间的协同效应,这些促进了水的解离以及H*的吸附和解吸,从而协同加速HER动力学并提高HER活性。本研究证明了富含磷空位的HER催化剂在工业规模电流密度下工作的潜力,突出了开发耐用且高效的制氢催化剂的重要性。