Chen Jianmei, Guo Shanlu, Wang Longlu, Liu Shujuan, Wang Hao, Zhao Qiang
College of Electronic and Optical Engineering & College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing, 210023, China.
State Key Laboratory of Organic Electronics and Information Displays and Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Nanjing University of Posts and Telecommunications, Nanjing, 210023, China.
Small. 2024 Sep;20(38):e2401019. doi: 10.1002/smll.202401019. Epub 2024 May 16.
As a sustainable energy technology, electrocatalytic energy conversion requires electrocatalysts, which greatly motivates the exploitation of high-performance electrocatalysts based on nonprecious metals. Molybdenum-based nanomaterials have demonstrated promise as electrocatalysts because of their unique physiochemical and electronic properties. Among them, atomic Mo catalysts, also called Mo-based single-atom catalysts (Mo-SACs), have the most accessible active sites and tunable microenvironments and are thrivingly explored in various electrochemical conversion reactions. A timely review of such rapidly developing topics is necessary to provide guidance for further exploration of optimized Mo-SACs toward electrochemical energy technologies. In this review, recent advances in the synthetic strategies for Mo-SACs are highlighted, focusing on the microenvironment engineering of Mo atoms. Then, the representative achievements of their applications in various electrocatalytic reactions involving the N, HO, and CO cycles are summarized by combining experimental and computational results. Finally, prospects for the future development of Mo-SACs in electrocatalysis are provided and the key challenges that require further investigation and optimization are highlighted.
作为一种可持续能源技术,电催化能量转换需要电催化剂,这极大地推动了基于非贵金属的高性能电催化剂的开发。钼基纳米材料因其独特的物理化学和电子性质而展现出作为电催化剂的潜力。其中,原子钼催化剂,也称为钼基单原子催化剂(Mo-SACs),具有最易接近的活性位点和可调节的微环境,并且在各种电化学转换反应中得到了广泛研究。及时对这些快速发展的主题进行综述,对于进一步探索优化的Mo-SACs用于电化学能源技术提供指导是必要的。在本综述中,重点介绍了Mo-SACs合成策略的最新进展,着重于钼原子的微环境工程。然后,结合实验和计算结果,总结了它们在涉及氮、氢氧和一氧化碳循环的各种电催化反应中的代表性应用成果。最后,展望了Mo-SACs在电催化领域的未来发展,并强调了需要进一步研究和优化的关键挑战。