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超薄二维材料的晶面工程

Facet engineering of ultrathin two-dimensional materials.

作者信息

Li Linyang, Xia Yabei, Zeng Mengqi, Fu Lei

机构信息

College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, China.

The Institute for Advanced Studies (IAS), Wuhan University, Wuhan 430072, China.

出版信息

Chem Soc Rev. 2022 Aug 30;51(17):7327-7343. doi: 10.1039/d2cs00067a.

Abstract

Ultrathin two-dimensional (2D) materials exhibit broad application prospects in many fields due to the enhanced specific surface area to volume ratio and quantum confinement effect. Because of the atomic thickness and various orientations, ultrathin 2D materials exposing specific facets have drawn great attention for various applications in catalysis, batteries, optoelectronics, magnetism, epitaxial template for material growth, Though maintaining the atomic thickness of 2D materials while controlling crystal facets is an enormous challenge, breakthroughs are being made. This review provides a comprehensive overview of the recent advances in the facet engineering of 2D materials, ranging from a basic understanding of facets and the corresponding approaches and the significance of facet engineering. We also propose current challenges and forecast future development directions including the establishment of a facet database, the fabrication of new 2D materials, the design of specific substrates, and the introduction of theoretical calculations and characterization techniques. This review can guide researchers to design ultrathin 2D materials with unique and distinct facets and provide an insight into the applications of energy, magnetism, optics, biomedicine, and other fields.

摘要

超薄二维(2D)材料由于其增大的比表面积与体积比以及量子限制效应,在许多领域展现出广阔的应用前景。由于原子厚度和多种取向,暴露特定晶面的超薄二维材料在催化、电池、光电子学、磁学、材料生长的外延模板等各种应用中备受关注。尽管在保持二维材料原子厚度的同时控制晶面是一项巨大挑战,但目前正在取得突破。本综述全面概述了二维材料晶面工程的最新进展,涵盖对晶面的基本理解、相应方法以及晶面工程的意义。我们还提出了当前面临的挑战,并预测了未来的发展方向,包括建立晶面数据库、制备新型二维材料、设计特定衬底以及引入理论计算和表征技术。本综述可指导研究人员设计具有独特晶面的超薄二维材料,并深入了解其在能源、磁学、光学、生物医学等领域的应用。

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