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扩展hBN中自旋缺陷的连贯性使先进的量子比特控制和量子传感成为可能
Roberto Rizzato1,2, Martin Schalk3,4, Stephan Mohr5
1Technical University of Munich, TUM School of Natural Sciences, Department of Chemistry, Lichtenbergstraße 4, Garching bei München, 85748, Germany. roberto.rizzato@tum.de.
Nature communications
|August 22, 2023
概括
在六角化中增强负电荷空缺中心,使用动态解. 这大大延长了自旋相干时间,使先进的量子传感具有高分辨率.
科学领域:
- 量子物理学和材料科学.
- 纳米级传感技术.纳米级传感技术.
背景情况:
- 基于六边形化 (hBN) 中负电荷空置中心的光学地址化量子比特是有前途的量子技术.
- 这些自旋缺陷显示出传感温度,压力和磁场的潜力,但受到短自旋相干时间的限制.
研究的目的:
- 延长hBN中负电荷空置中心的旋转连贯时间.
- 用这些增强的自旋缺陷来演示先进的量子传感协议.
主要方法:
- 应用动态解技术来抑制磁噪声.
- 测量接近T1放松极限的延长自旋相干时间.
- 开发和测试用于射频信号检测的量子传感协议.
主要成果:
- 旋转连贯时间延长了两个数量级.
- 演示了先进的旋转控制.
- 探测无线电频率信号的分辨率低于Hz.
- 灵敏度与最先进的钻石量子传感器进行了基准测试.
结论:
- 动态解显著改善了hBN缺陷中的自旋连贯性.
- 增强的hBN旋转缺陷使得高分辨率的纳米级量子传感成为可能.
- 这项工作为超薄,可剥皮材料中的量子传感器和网络铺平了道路.
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