Visualizing Line Defects in non-van der Waals Bi2O2Se Using Raman Spectroscopy

拉曼光谱 材料科学 石墨烯 范德瓦尔斯力 光谱学 化学气相沉积 晶界 纳米尺度 光电子学 分子振动 分子物理学 光学 纳米技术 化学 分子 冶金 物理 微观结构 有机化学 量子力学
作者
Un Jeong Kim,Seung Hoon Nam,Jae M. Seo,Mikyung Yang,Qundong Fu,Zheng Liu,Hyungbin Son,Moonsang Lee,Myung Gwan Hahm
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (3): 3637-3646 被引量:12
标识
DOI:10.1021/acsnano.1c06598
摘要

Atomic-layered materials, such as high-quality bismuth oxychalcogenides, which are composed of oppositely charged alternate layers grown using chemical vapor deposition, have attracted considerable attention. Their physical properties are well-suited for high-speed, low-power-consumption optoelectronic devices, and the rapid determination of their crystallographic characteristics is crucial for scalability and integration. In this study, we introduce how the crystallographic structure and quality of such materials can be projected through Raman spectroscopy analysis. Frequency modes at ∼55, ∼78, ∼360, and ∼434 cm-1 were detected, bearing out theoretical calculations from the literature. The low-frequency modes positioned at 55 and 78 cm-1 were activated by structural defects, such as grain boundaries and O-rich edges in the Bi2O2Se crystals, accompanied by sensitivity to the excitation energy. Furthermore, the line defects at ∼55 cm-1 exhibited a strong 2-fold polarization dependence, similar to graphene/graphite edges. Our results can help illuminate the mechanism for activating the Raman-active mode from the infrared active mode by defects, as well as the electronic structures of these two-dimensional layered materials. We also suggest that the nanoscale width line defects in Bi2O2Se can be visualized using Raman spectroscopy.
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