量子点接触中的旋转极化基于wurtsite的拓量子井
Xin Xue1, Fobao Huang2,3, Gongwei Hu4
1Department of Physics, Lvliang University, Lvliang 03300, China.
Physical chemistry chemical physics : PCCP
|September 23, 2023
概括
这项研究证明了利用量子接触点在拓性石量子井中对旋极化电子运输的电控制. 调整量子点接触宽度调整了旋转轨道合,使旋转电子应用程序的操纵成为可能.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 材料科学 材料科学 材料科学
- 量子力学就是量子力学.
背景情况:
- 宽间隙石半导体是高温自旋电子学的关键.
- 石量子井 (QWs) 中的拓绝缘体为通过拓边缘和Rashba旋转轨道合 (SOC) 的旋转极化传输提供平台.
研究的目的:
- 提出并研究一个基于ZnO/CdO的量子点接触 (QPC) 结构中的自旋极化装置.
- 通过电气控制来探索旋转极化电子传输的操纵.
主要方法:
- 在ZnO/CdO中使用量子点接触 (QPC) 结构,在石拓QW中使用量子点接触 (QPC) 结构.
- 通过变化QPC宽度,研究了横向自旋轨道合 (SOC) 和边缘状态带间隙的量子大小效应.
- 分析了由分门电压控制的旋转偏振导电位振荡和旋转前行.
主要成果:
- QPC宽度通过量子尺寸效应有效控制横向SOC和边缘状态带间隙.
- 旋转极化导电性由于旋转前行而表现出电压控制的振荡.
- 由QPC引起的旋转分裂高度非线性,在带间隙附近加强.
- 对于QPC宽度>50 nm,旋转分裂被抑制,导致长旋转前置长度.
结论:
- QPC宽度依赖的横向SOC提供了一种电气方法,用于操纵拓性氏体系统中的自旋极化电子传输.
- 这种方法对推进高温自旋电子应用有前途.
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