Yang Ruijie, Mei Liang, Lin Zhaoyang, Fan Yingying, Lim Jongwoo, Guo Jinghua, Liu Yijin, Shin Hyeon Suk, Voiry Damien, Lu Qingye, Li Ju, Zeng Zhiyuan
Department of Materials Science and Engineering and State Key Laboratory of Marine Pollution, City University of Hong Kong, Kowloon, Hong Kong, P. R. China.
Department of Chemical and Petroleum Engineering, University of Calgary, Calgary, Alberta, Canada.
Nat Rev Chem. 2024 Jun;8(6):410-432. doi: 10.1038/s41570-024-00605-2. Epub 2024 May 16.
Intercalation of atoms, ions and molecules is a powerful tool for altering or tuning the properties - interlayer interactions, in-plane bonding configurations, Fermi-level energies, electronic band structures and spin-orbit coupling - of 2D materials. Intercalation can induce property changes in materials related to photonics, electronics, optoelectronics, thermoelectricity, magnetism, catalysis and energy storage, unlocking or improving the potential of 2D materials in present and future applications. In situ imaging and spectroscopy technologies are used to visualize and trace intercalation processes. These techniques provide the opportunity for deciphering important and often elusive intercalation dynamics, chemomechanics and mechanisms, such as the intercalation pathways, reversibility, uniformity and speed. In this Review, we discuss intercalation in 2D materials, beginning with a brief introduction of the intercalation strategies, then we look into the atomic and intrinsic effects of intercalation, followed by an overview of their in situ studies, and finally provide our outlook.
原子、离子和分子的插入是改变或调控二维材料性质(层间相互作用、面内键合构型、费米能级、电子能带结构和自旋轨道耦合)的有力工具。插入可引发材料在光子学、电子学、光电子学、热电学、磁学、催化和能量存储等方面的性质变化,释放或提升二维材料在当前及未来应用中的潜力。原位成像和光谱技术用于可视化和追踪插入过程。这些技术为解读重要且常难以捉摸的插入动力学、化学力学和机制(如插入途径、可逆性、均匀性和速度)提供了契机。在本综述中,我们将探讨二维材料中的插入,首先简要介绍插入策略,接着研究插入的原子和内在效应,随后概述其原位研究,最后给出我们的展望。