DFT‐Assisted Investigation of the Electric Field and Charge Density Distribution of Pristine and Defective 2D WSe2 by Differential Phase Contrast Imaging

电场 扫描透射电子显微镜 材料科学 电荷密度 原子单位 分子物理学 透射电子显微镜 凝聚态物理 分析化学(期刊) 原子物理学 纳米技术 化学 物理 色谱法 量子力学
作者
Maja Groll,Julius Bürger,Ioannis Caltzidis,Klaus D. Jöns,W. G. Schmidt,U. Gerstmann,J.K.N. Lindner
出处
期刊:Small [Wiley]
卷期号:20 (35)
标识
DOI:10.1002/smll.202311635
摘要

Abstract Most properties of solid materials are defined by their internal electric field and charge density distributions which so far are difficult to measure with high spatial resolution. Especially for 2D materials, the atomic electric fields influence the optoelectronic properties. In this study, the atomic‐scale electric field and charge density distribution of WSe 2 bi‐ and trilayers are revealed using an emerging microscopy technique, differential phase contrast (DPC) imaging in scanning transmission electron microscopy (STEM). For pristine material, a higher positive charge density located at the selenium atomic columns compared to the tungsten atomic columns is obtained and tentatively explained by a coherent scattering effect. Furthermore, the change in the electric field distribution induced by a missing selenium atomic column is investigated. A characteristic electric field distribution in the vicinity of the defect with locally reduced magnitudes compared to the pristine lattice is observed. This effect is accompanied by a considerable inward relaxation of the surrounding lattice, which according to first principles DFT calculation is fully compatible with a missing column of Se atoms. This shows that DPC imaging, as an electric field sensitive technique, provides additional and remarkable information to the otherwise only structural analysis obtained with conventional STEM imaging.
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