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二维层状过渡金属二硫属化物中缺陷和掺杂剂的原子结构。

Atomic structure of defects and dopants in 2D layered transition metal dichalcogenides.

机构信息

Science and Technology on Advanced Ceramic Fibers and Composites Laboratory, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, P. R. China.

出版信息

Chem Soc Rev. 2018 Aug 28;47(17):6764-6794. doi: 10.1039/c8cs00236c.

Abstract

Layered transition metal dichalcogenides (TMDs) offer monolayer 2D systems with diverse properties that extend beyond what graphene alone can achieve. The properties of TMDs are heavily influenced by the atomic structure and in particular imperfects in the crystallinity in the form of vacancy defects, grain boundaries, cracks, impurity dopants, ripples and edge terminations. This review will cover the current knowledge of the detailed structural forms of some of the most intensively studied 2D TMDs, such as MoS2, WSe2, MoTe2, WTe2, NbSe2, PtSe2, and also covers MXenes. The review will utilize results achieved using state-of-the-art aberration corrected transmission electron microscopy, including annular dark-field scanning transmission electron microscopy (ADF-STEM) and electron energy loss spectroscopy (EELS), showing how elemental discrimination can be achieved to understand structure at a deep level. The review will also cover the impact of single atom substitutional dopants, such as Cr, V and Mn, and electron energy loss spectroscopy used to understand the local bonding configuration. It is expected that this review will provide an atomic level understanding of 2D TMDs with a connection to imperfections that can arise from chemical vapour deposition synthesis, intentional doping, rips and tears, dislocations, strain, polycrystallinity and confinement to nanoribbons.

摘要

层状过渡金属二卤化物 (TMDs) 提供了具有多种性质的单层 2D 系统,这些性质超出了石墨烯本身所能达到的范围。TMDs 的性质受原子结构的强烈影响,特别是晶体结构中的不完美,如空位缺陷、晶界、裂纹、杂质掺杂、波纹和边缘终止。这篇综述将涵盖一些研究最广泛的二维 TMDs(如 MoS2、WSe2、MoTe2、WTe2、NbSe2、PtSe2 以及 MXenes)的详细结构形式的最新知识。综述将利用最先进的像差校正透射电子显微镜(如环形暗场扫描透射电子显微镜(ADF-STEM)和电子能量损失光谱学(EELS))的结果,展示如何实现元素分辨以深入了解结构。综述还将涵盖单原子取代掺杂剂(如 Cr、V 和 Mn)的影响,以及电子能量损失光谱学用于了解局部键合结构。预计这篇综述将提供对二维 TMDs 的原子水平理解,并将其与化学气相沉积合成、有意掺杂、撕裂、位错、应变、多晶性和限制在纳米带中可能出现的不完美联系起来。

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