在光子学中,核自旋量子位寄存器的纠
Hanbin Song1,2, Xueyue Zhang3,4,5, Lukasz Komza1,4
1Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
Nature nanotechnology
|December 9, 2025
概括
在光子波导中集成的T中心形成一个三量子比特量子寄存器. 该系统展示了连贯的控制和纠,为光学量子通信铺平了道路.
科学领域:
- 量子计算和固态物理学.
- 开发用于量子技术的自旋光子接口.
背景情况:
- 固体中的颜色中心为使用电子和核自旋量子比特的量子寄存器提供光学接口.
- 中的T中心是一个有前途的自旋光子接口,具有电信O波段光学转换和电子自旋,适合可扩展光子学.
研究的目的:
- 将T中心集成到光子平台中,以创建一个多量子比特量子寄存器.
- 为了证明T中心旋转寄存器的连贯控制,初始化和状态读取.
- 为了研究核旋转之间的纠生成在注册表内.
主要方法:
- 将T中心集成到在绝缘体平台上的单模光子波导中.
- 一个三量子比特寄存器 (T中心电子旋转,核旋转,核旋转) 的初始化,连贯控制和状态读取的演示.
- 使用核核双量子比特门来产生纠.
主要成果:
- 实现了0.41ms (电子旋转),112ms (核旋转) 和67ms (核旋转) 的自旋回声相干时间.
- 在两个核旋转之间产生纠,其保真度为0.77(3) 和相干时间为2.60(8) ms.
- 在光子学中成功展示了基于T中心的功能性三量子比特寄存器.
结论:
- 光子学中的T中心可以作为一个强大的多量子位寄存器.
- 开发的系统为量子通信应用提供了一个光学接口.
- 这项工作突出了T中心在可扩展的量子信息处理方面的潜力.
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