在应力半导体中,在没有磁场的情况下进行一致的旋转操纵.
Y Kato1, R C Myers, A C Gossard
1Center for Spintronics and Quantum Computation, University of California, Santa Barbara, California 93106, USA.
Nature
|January 1, 2004
概括
研究人员直接测量了无磁场的半导体中的电子自旋前行. 应变诱导效应使电子自旋的电控制成为可能,为自旋电子学和量子信息处理铺平了道路.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 量子力学就是量子力学.
- 材料科学 材料科学 材料科学
背景情况:
- 相对论规定,电场将电子旋转和动量 (旋转-轨道合) 结合起来.
- 旋转轨道合可以在没有磁场的半导体中操纵电子旋转,这对于旋转电子学和量子信息处理至关重要.
- 以前的研究主要使用非旋转选择性的电力测量.
研究的目的:
- 在零磁场中直接测量连贯电子自旋前行.
- 在施加电场下,研究应力化和化的表轴层中的自旋动力学.
- 探索应变诱导对电子自旋操纵的影响.
主要方法:
- 利用超快的光学技术来实现旋转动态的时空解析.
- 应用电场来诱导半导体样本中的电子漂移.
- 在应力氧化和氧化中研究了旋转前行.
主要成果:
- 在没有磁场的情况下直接观察到连贯的电子自旋前行.
- 在简单的半导体结构中发现了由于应变而导致的意想不到的旋转分裂.
- 通过应变工程实现了对电子自旋的电控制.
- 已证明电驱动的自旋共振与拉比频率高达30MHz.
结论:
- 应变工程为半导体中电子旋转的电气控制提供了一种灵活的方法.
- 观察到的应变诱导的旋转分裂是旋转电子学的一个重要发现.
- 这项工作为先进的基于自旋的量子设备提供了途径.
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