量子自旋电子学:工程和操纵半导体中的类似原子的自旋
David D Awschalom1, Lee C Bassett, Andrew S Dzurak
1Center for Spintronics and Quantum Computation, University of California, Santa Barbara, Santa Barbara, CA 93106, USA. awsch@physics.ucsb.edu
概括
半导体中的量子控制已经取得了显著的进步,实现了室温操作和电子自旋相干时间超过秒. 这一突破使得超连贯的自旋电子学成为可能,与原子系统对抗量子信息处理.
科学领域:
- 固态物理 固态物理
- 量子信息科学是一种量子信息科学.
- 这就是Spintronics.
背景情况:
- 在过去十年中,在半导体中使用电荷和旋转来隔离和控制量子连贯性方面取得了重大进展.
- 在室温下建立量子控制,这是实际应用的关键里程碑.
- 电子自旋相干时间增加了9个数量级,现在超过了几秒钟.
研究的目的:
- 审查近期量子测量,连贯控制和半导体自旋电子学中纠状态生成方面的进展.
- 要突出超连贯的自旋电子的发展,与原子系统相提并论.
- 为了确定使用半导体旋转处理量子信息的剩余挑战.
主要方法:
- 对半导体系统中隔离和控制量子连贯性的实验技术的审查.
- 分析室温量子控制方法的进展.
- 检查使用电子自旋产生纠状态的方法.
主要成果:
- 电子自旋相干时间在室温下超过几秒的证明.
- 与早期的半导体量子比特相比,相干时间增加了九个数量级.
- 建立了与传统原子系统相匹敌的连贯时间.
结论:
- 这些进步为超连贯的自旋电子技术的新时代铺平了道路.
- 基于半导体的量子信息处理正在变得越来越可行.
- 需要进一步的研究来克服量子信息处理与旋转的挑战.
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