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二维半导体中用于选择性稀杂质成像的单原子缺陷电导率

Single Atomic Defect Conductivity for Selective Dilute Impurity Imaging in 2D Semiconductors.

作者信息

Vu Nam Thanh Trung, Loh Leyi, Chen Yuan, Wu Qingyun, Verzhbitskiy Ivan A, Watanabe Kenji, Taniguchi Takashi, Bosman Michel, Ang Yee Sin, Ang Lay Kee, Trushin Maxim, Eda Goki

机构信息

Physics Department, National University of Singapore, Singapore 117551, Singapore.

Department of Materials Science and Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore 117575, Singapore.

出版信息

ACS Nano. 2023 Aug 22;17(16):15648-15655. doi: 10.1021/acsnano.3c02758. Epub 2023 Aug 11.

Abstract

Precisely controlled impurity doping is of fundamental significance in modern semiconductor technologies. Desired physical properties are often achieved at impurity concentrations well below parts per million level. For emergent two-dimensional semiconductors, development of reliable doping strategies is hindered by the inherent difficulty in identifying and quantifying impurities in such a dilute limit where the absolute number of atoms to be detected is insufficient for common analytical techniques. Here we report rapid high-contrast imaging of dilute single atomic impurities by using conductive atomic force microscopy. We show that the local conductivity is enhanced by more than 100-fold by a single impurity atom due to resonance-assisted tunneling. Unlike the closely related scanning tunneling microscopy, the local conductivity sensitively depends on the impurity energy level, allowing minority defects to be selectively imaged. We further demonstrate subsurface impurity detection with single monolayer depth resolution in multilayer materials.

摘要

精确控制杂质掺杂在现代半导体技术中具有根本重要性。所需的物理特性通常在杂质浓度远低于百万分之一的水平时才能实现。对于新兴的二维半导体,可靠掺杂策略的发展受到内在困难的阻碍,即在如此稀释的极限情况下识别和量化杂质存在困难,因为要检测的原子绝对数量对于常见分析技术而言不足。在此,我们报告了利用导电原子力显微镜对稀释的单原子杂质进行快速高对比度成像。我们表明,由于共振辅助隧穿,单个杂质原子可使局部电导率提高100倍以上。与密切相关的扫描隧穿显微镜不同,局部电导率敏感地取决于杂质能级,从而能够对少数缺陷进行选择性成像。我们还展示了在多层材料中具有单层深度分辨率的次表面杂质检测。

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