State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Zhongshan Road 457, Dalian, 116023, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Adv Mater. 2019 Dec;31(50):e1901996. doi: 10.1002/adma.201901996. Epub 2019 Aug 7.
The unique electronic and structural properties of 2D materials have triggered wide research interest in catalysis. The lattice of 2D materials and the interface between 2D covers and other substrates provide intriguing confinement environments for active sites, which has stimulated a rising area of "confinement catalysis with 2D materials." Fundamental understanding of confinement catalysis with 2D materials will favor the rational design of high-performance 2D nanocatalysts. Confinement catalysis with 2D materials has found extensive applications in energy-related reaction processes, especially in the conversion of small energy-related molecules such as O , CH , CO, CO , H O, and CH OH. Two representative strategies, i.e., 2D lattice-confined single atoms and 2D cover-confined metals, have been applied to construct 2D confinement catalytic systems with superior catalytic activity and stability. Herein, the recent advances in the design, applications, and structure-performance analysis of two 2D confinement catalytic systems are summarized. The different routes for tuning the electronic states of 2D confinement catalysts are highlighted and perspectives on confinement catalysis with 2D materials toward energy conversion and utilization in the future are provided.
二维材料独特的电子和结构特性引发了催化领域的广泛研究兴趣。二维材料的晶格和二维覆盖层与其他基底之间的界面为活性位点提供了有趣的限域环境,这激发了“二维材料限域催化”这一新兴领域的发展。对二维材料限域催化的基本理解有利于高性能二维纳米催化剂的合理设计。二维材料限域催化在能源相关反应过程中得到了广泛应用,特别是在小分子如 O 、CH 、CO、CO 、H O 和 CH OH 的转化方面。目前已经应用了两种代表性策略,即二维晶格限域单原子和二维覆盖层限域金属,来构建具有优越催化活性和稳定性的二维限域催化体系。本文总结了这两种二维限域催化体系在设计、应用和结构性能分析方面的最新进展。重点介绍了调控二维限域催化剂电子态的不同途径,并对二维材料限域催化在未来能源转化和利用方面的前景进行了展望。