量子点阵列中的单电子占用在可选择的插孔门电压下
Marcel Meyer1, Corentin Déprez1, Ilja N Meijer1
1QuTech and Kavli Institute of Nanoscience, Delft University of Technology, PO Box 5046, 2600 GA Delft, The Netherlands.
Nano letters
|December 13, 2023
概括
我们开发了一种应力电压方法,以使半导体量子比特的网关电压相等. 这种技术使量子点中的稳定电荷状态成为可能,从而推进了可扩展的量子计算硬件.
科学领域:
- 量子计算是一种量子计算.
- 半导体物理 半导体物理
背景情况:
- 半导体量子比特为可扩展的量子计算提供了一个小的足迹.
- 量子位尺寸对当地环境和门变化的敏感性挑战了可扩展性.
- 目前的方法需要为每个设备量身定制的网关电压,这阻碍了大规模生产.
研究的目的:
- 开发一种可扩展的方法来调整半导体量子位中的门电压.
- 为了在量子点中实现稳定的电荷状态,使用一种新的电压均等技术.
主要方法:
- 利用应力电压的临时应用来调整和等效门电压.
- 在双量子点中研究了电荷状态稳定性.
- 将该方法扩展到2x2四倍量子点配置.
主要成果:
- 在一个双量子点中,在相同的,预先确定的门电压下,实现了稳定的 (1,1) 电荷状态.
- 证明了 (1,1,1,1) 电荷状态在2x2四倍量子点中,所有门设置为1V.
- 展示了定义所需的网关电压的能力,而不管互点合.
结论:
- 应力电压方法为量子点中的门电压控制提供了一个可扩展的解决方案.
- 这种技术可以简化自旋量子比特设备的控制电子和操作.
- 这些发现代表了在开发强大的量子硬件方面取得的重大进展.
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