Wan Zhenwei, Zhang Yueqi, Ren Qinglin, Li Xueru, Yu Haitao, Zhou Wenkai, Ma Xinbin, Xuan Cuijuan
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, PR China.
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, PR China.
J Colloid Interface Sci. 2024 Jan;653(Pt A):795-806. doi: 10.1016/j.jcis.2023.09.117. Epub 2023 Sep 21.
Developing highly efficient bifunctional non-noble metal-based electrocatalysts is pivotal to fulfilling practical water electrolysis. In this work, NiS/NiCoS heterostructured electrocatalysts are prepared through a simply controlling sulfurization process by employing a one-pot solvothermal strategy. The alteration of cobalt addition amount can affect the crystalline phase, morphology, and catalytic activity of the resulting heterostructured materials. The successful integration of NiS with NiCoS is realized by deliberately tuning the cobalt addition amount. The resulting Co-Ni-S delivers high activity with low overpotentials of 198 and 259 mV to attain 10 mA cm when used as electrocatalysts toward hydrogen evolution reaction and oxygen evolution reaction, respectively. Experimental and theoretical calculations evidence the strong interface coupling between NiS and NiCoS leads to increased electronic conductivity, electron migration near lattice-matched interface and interfacial charge redistribution, thereof enhancing the reaction kinetics rate and activity. Moreover, the potential application is demonstrated by employing Co-Ni-S in a two-electrode electrolyzer which can efficiently catalyze water electrolysis and work stably for 100 h. This work not only provides highly efficient bifunctional heterostructured electrocatalysts by simply regulating the metal components in sulfides but also further broadens the application of interface engineering.
开发高效的双功能非贵金属基电催化剂对于实现实际的水电解至关重要。在这项工作中,通过一锅溶剂热策略简单地控制硫化过程,制备了NiS/NiCoS异质结构电催化剂。钴添加量的改变会影响所得异质结构材料的晶相、形态和催化活性。通过有意调整钴添加量,实现了NiS与NiCoS的成功整合。所得的Co-Ni-S用作析氢反应和析氧反应的电催化剂时,分别具有198和259 mV的低过电位,可达到10 mA cm,展现出高活性。实验和理论计算表明,NiS和NiCoS之间的强界面耦合导致电子电导率增加、晶格匹配界面附近的电子迁移以及界面电荷重新分布,从而提高了反应动力学速率和活性。此外,通过在双电极电解槽中使用Co-Ni-S证明了其潜在应用,该电解槽可以有效地催化水电解并稳定工作100小时。这项工作不仅通过简单地调节硫化物中的金属成分提供了高效的双功能异质结构电催化剂,还进一步拓宽了界面工程的应用。