Huo Juanjuan, Dou Yuhai, Wu Chao, Liu Huakun, Dou Shixue, Yuan Ding
Institute of Energy Materials Science, University of Shanghai for Science and Technology, Shanghai, 200093, China.
Adv Mater. 2025 Feb;37(7):e2416483. doi: 10.1002/adma.202416483. Epub 2024 Dec 20.
Recently, metal-based atomically thin materials (M-ATMs) have experienced rapid development due to their large specific surface areas, abundant electrochemically accessible sites, attractive surface chemistry, and strong in-plane chemical bonds. These characteristics make them highly desirable for energy-related conversion reactions. However, the insufficient active sites and slow reaction kinetics leading to unsatisfactory electrocatalytic performance limited their commercial application. To address these issues, defect engineering of M-ATMs has emerged to increase the active sites, modify the electronic structure, and enhance the catalytic reactivity and stability. This review provides a comprehensive summary of defect engineering strategies for M-ATM nanostructures, including vacancy creation, heteroatom doping, amorphous phase/grain boundary generation, and heterointerface construction. Introducing recent advancements in the application of M-ATMs in electrochemical small molecule conversion reactions (e.g., hydrogen, oxygen, carbon dioxide, nitrogen, and sulfur), which can contribute to a circular economy by recycling molecules like H, O, CO, N, and S. Furthermore, a crucial link between the reconstruction of atomic-level structure and catalytic activity via analyzing the dynamic evolution of M-ATMs during the reaction process is established. The review also outlines the challenges and prospects associated with M-ATM-based catalysts to inspire further research efforts in developing high-performance M-ATMs.
近年来,基于金属的原子级薄材料(M-ATMs)因其具有大的比表面积、丰富的电化学可及位点、吸引人的表面化学性质以及强的面内化学键而得到迅速发展。这些特性使得它们在与能源相关的转化反应中备受青睐。然而,活性位点不足和反应动力学缓慢导致电催化性能不尽人意,限制了它们的商业应用。为了解决这些问题,M-ATMs的缺陷工程应运而生,以增加活性位点、修饰电子结构并提高催化反应活性和稳定性。本文综述全面总结了M-ATM纳米结构的缺陷工程策略,包括空位产生、杂原子掺杂、非晶相/晶界生成以及异质界面构建。介绍了M-ATMs在电化学小分子转化反应(如氢气、氧气、二氧化碳、氮气和硫)中的应用的最新进展,这些反应可通过循环利用H、O、CO、N和S等分子助力循环经济。此外,通过分析反应过程中M-ATMs的动态演化,建立了原子级结构重构与催化活性之间的关键联系。本文综述还概述了基于M-ATM的催化剂相关的挑战和前景,以激发在开发高性能M-ATMs方面的进一步研究工作。