分子束外延
拓扑绝缘体
自旋电子学
材料科学
表面粗糙度
基质(水族馆)
拉曼光谱
光电子学
表面状态
表面光洁度
外延
蓝宝石
纳米技术
凝聚态物理
光学
曲面(拓扑)
铁磁性
图层(电子)
复合材料
激光器
物理
地质学
海洋学
数学
几何学
作者
Saadia Nasir,Walter Smith,Thomas E. Beechem,Stephanie Law
出处
期刊:Journal of vacuum science & technology
[American Institute of Physics]
日期:2022-12-22
卷期号:41 (1)
被引量:11
摘要
Bi 2 Se 3 is a widely studied 3D topological insulator having potential applications in optics, electronics, and spintronics. When the thickness of these films decreases to less than approximately 6 nm, the top and bottom surface states couple, resulting in the opening of a small gap at the Dirac point. In the 2D limit, Bi2Se3 may exhibit quantum spin Hall states. However, growing coalesced ultrathin Bi2Se3 films with a controllable thickness and typical triangular domain morphology in the few nanometer range is challenging. Here, we explore the growth of Bi2Se3 films having thicknesses down to 4 nm on sapphire substrates using molecular beam epitaxy that were then characterized with Hall measurements, atomic force microscopy, and Raman imaging. We find that substrate pretreatment—growing and decomposing a few layers of Bi2Se3 before the actual deposition—is critical to obtaining a completely coalesced film. In addition, higher growth rates and lower substrate temperatures led to improvement in surface roughness, in contrast to what is observed for conventional epitaxy. Overall, coalesced ultrathin Bi2Se3 films with lower surface roughness enable thickness-dependent studies across the transition from a 3D-topological insulator to one with gapped surface states in the 2D regime.
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