State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.
Institute for Superconducting and Electronic Materials (ISEM), Australian Institute for Innovative Materials (AIIM), University of Wollongong, Wollongong, NSW, 2500, Australia.
Small. 2023 Jul;19(27):e2300165. doi: 10.1002/smll.202300165. Epub 2023 Mar 28.
Two-dimensional (2D) layered materials have been widely used as catalysts due to their high specific surface area, large fraction of uncoordinated surface atoms, and high charge carrier mobility. Moiré superlattice emerges in 2D layered materials with twist angle or lattice mismatch. By manipulating the moiré superlattice structure, 2D layered materials present modulated electronic band structure, topological edge states, and unconventional superconductivity which are tightly associated with the performance of catalysts. Hence, engineering moiré superlattice structures are proposed to be an important technology in modifying 2D layered materials for improved catalytic properties. However, currently, the investigation of moiré superlattice structure in a catalytic application is still in its infancy. This perspective starts with the discussion of structural features and fabrication strategy of 2D materials with moiré superlattice structure. Afterward, the catalytic applications, including electrocatalytic and photocatalytic applications, are summarized. In particular, the promotion mechanism of the catalytic performance caused by the moiré superlattice structure is proposed. Finally, the perspective is concluded by outlining the remaining challenges and possible solutions for the future development of 2D materials with moiré superlattice structure towards the catalytic applications.
二维(2D)层状材料由于具有高比表面积、大量未配位的表面原子和高电荷载流子迁移率,因此被广泛用作催化剂。在具有扭转角或晶格失配的二维层状材料中会出现莫尔超晶格。通过操纵莫尔超晶格结构,二维层状材料呈现出调制的电子能带结构、拓扑边缘态和非常规超导性,这些与催化剂的性能密切相关。因此,工程化莫尔超晶格结构被提出是改善催化剂性能的 2D 层状材料的重要技术。然而,目前,在催化应用中对莫尔超晶格结构的研究仍处于起步阶段。本观点首先讨论了具有莫尔超晶格结构的 2D 材料的结构特征和制造策略。随后,总结了包括电催化和光催化应用在内的催化应用。特别提出了莫尔超晶格结构对催化性能的促进机制。最后,通过概述具有莫尔超晶格结构的 2D 材料在催化应用方面未来发展所面临的挑战和可能的解决方案,对该观点进行了总结。