Zhu Yiming, Wang Jingyao, Ma Jiwei
Shanghai Key Laboratory for R&D and Application of Metallic Functional Materials Institute of New Energy for Vehicles School of Materials Science and Engineering Tongji University Shanghai 201804 China.
Small Sci. 2023 Apr 12;3(6):2300010. doi: 10.1002/smsc.202300010. eCollection 2023 Jun.
Single-atom catalysts (SACs) are a popular area of research for clean energy conversion owing to their cost-effectiveness and excellent performance. The support plays a vital role in uniformly stabilizing and dispersing the single atoms. Although easily accessible carbon (C) is commonly selected as a support for SACs, its electrochemical properties, particularly stability, usually limits its application. Recently, non-C materials with flexible physicochemical properties and unique metal-support interactions have attracted increasing attention for loading isolated metal atoms, showing promise for promoting catalytic performance. Therefore, in this review, a comprehensive summary of current research developments in non-C-supported SACs for green energy conversion is provided. The review begins with a brief introduction of the four types of non-C-supported SACs based on the support used. Thereafter, a systemic summary of synthesis methods for non-C-supported SACs analyzing their advantages and disadvantages is provided. The interactions between single metal atoms and non-C supports are discussed, followed by their applications in green energy conversion. Then, the significance of adopting a variety of in situ/operando approaches is emphasized to gain insight into both the synthesis and reaction mechanisms, which have been successfully deployed for non-C-supported SACs. Finally, the remaining challenges and perspectives on designing promising non-C-supported SACs are discussed.
单原子催化剂(SACs)因其成本效益和卓越性能,成为清洁能源转化领域热门的研究方向。载体在单原子的均匀稳定和分散方面起着至关重要的作用。尽管易于获取的碳(C)通常被选作SACs的载体,但其电化学性质,尤其是稳定性,常常限制了它的应用。近年来,具有灵活物理化学性质和独特金属-载体相互作用的非碳材料,在负载孤立金属原子方面越来越受到关注,有望提升催化性能。因此,在本综述中,我们全面总结了非碳负载型SACs在绿色能源转化方面的研究进展。综述首先基于所用载体简要介绍了四种类型的非碳负载型SACs。此后,系统总结了非碳负载型SACs的合成方法,并分析了其优缺点。讨论了单金属原子与非碳载体之间的相互作用,以及它们在绿色能源转化中的应用。然后,强调了采用各种原位/ operando方法对于深入了解合成和反应机制的重要性,这些方法已成功应用于非碳负载型SACs。最后,讨论了设计有前景的非碳负载型SACs面临的挑战和未来展望。