Zhu Tao, Han Yiwei, Liu Shuai, Yuan Bo, Liu Yatao, Ma Hongli
Institute of Atmospheric Environmental Management and Pollution Control, China University of Mining & Technology (Beijing), Beijing, China.
State Key Laboratory of Organic Geochemistry, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou, China.
Front Chem. 2021 Jul 21;9:717201. doi: 10.3389/fchem.2021.717201. eCollection 2021.
In recent years, single-atom catalysts (SACs) have received extensive attention due to their unique structure and excellent performance. Currently, a variety of porous materials are used as confined single-atom catalysts, such as zeolites, metal-organic frameworks (MOFs), or carbon nitride (CN). The support plays a key role in determining the coordination structure of the catalytic metal center and its catalytic performance. For example, the strong interaction between the metal and the carrier induces the charge transfer between the metal and the carrier, and ultimately affects the catalytic behavior of the single-atom catalyst. Porous materials have unique chemical and physical properties including high specific surface area, adjustable acidity and shape selectivity (such as zeolites), and are rational support materials for confined single atoms, which arouse research interest in this field. This review surveys the latest research progress of confined single-atom catalysts for porous materials, which mainly include zeolites, CN and MOFs. The preparation methods, characterizations, application fields, and the interaction between metal atoms and porous support materials of porous material confined single-atom catalysts are discussed. And we prospect for the application prospects and challenges of porous material confined single-atom catalysts.
近年来,单原子催化剂(SACs)因其独特的结构和优异的性能而受到广泛关注。目前,多种多孔材料被用作受限单原子催化剂的载体,如沸石、金属有机框架材料(MOFs)或氮化碳(CN)。载体在决定催化金属中心的配位结构及其催化性能方面起着关键作用。例如,金属与载体之间的强相互作用会引起金属与载体之间的电荷转移,最终影响单原子催化剂的催化行为。多孔材料具有独特的化学和物理性质,包括高比表面积、可调节的酸度和形状选择性(如沸石),是受限单原子的理想载体材料,这引发了该领域的研究兴趣。本文综述了多孔材料受限单原子催化剂的最新研究进展,主要包括沸石、CN和MOFs。讨论了多孔材料受限单原子催化剂的制备方法、表征、应用领域以及金属原子与多孔载体材料之间的相互作用。并对多孔材料受限单原子催化剂的应用前景和挑战进行了展望。