一个复杂的光学原子钟的基本量子网络
B C Nichol1, R Srinivas2, D P Nadlinger3
1Department of Physics, Clarendon Laboratory, University of Oxford, Oxford, UK. bethan.nichol@physics.ox.ac.uk.
Nature
|September 7, 2022
概括
研究人员使用光子链接连接两个相隔2米的离子时钟, 创建了一个复杂的光学时钟的基本量子网络. 这种纠显著降低了测量不确定性,接近海森堡极限以进行增强的时间和频率比较.
科学领域:
- 量子信息科学
- 原子物理
- 测量学
背景情况:
- 光学原子钟是最精确的时间和频率测量工具.
- 远程光学时钟的比较使得基本的物理测试,地测和时钟错误的评估成为可能.
- 纠可以超过标准的量子极限,达到海森堡极限以提高精度.
研究的目的:
- 通过远程离子演示一个纠的光学时钟的基本量子网络.
- 调查使用光子链接在遥远的原子系统之间进行高保真纠.
- 在频率比较中量化通过纠实现的精度增强.
主要方法:
- 使用光子链接纠两个88Sr+离子相隔约2米.
- 在纠离子之间进行精确的频率比较.
- 与传统光谱技术相比,测量了不确定性降低.
主要成果:
- 证明了远程88Sr+离子之间的纠,形成一个基本的光学时钟量子网络.
- 在频率比较中实现了接近海森堡极限的测量不确定性降低.
- 与传统方法相比,在激光脱相的情况下,测量不确定性减少了2倍.
结论:
- 通过光子链接的纠可以提高远程光学时钟比较的精度.
- 这两个节点网络代表了向更大量子网络的基础步骤,
- 展示的技术为克服当前光学时钟比较的局限性提供了途径.
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