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液冷却^{40}Ca^{+}离子光学时钟,系统不确定性为4.4×10^{-19}
Bao-Lin Zhang1, Zi-Xiao Ma1,2, Yao Huang1
1Chinese Academy of Sciences, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Innovation Academy for Precision Measurement Science and Technology, Wuhan 430071, China.
Physical review letters
|February 22, 2026
概括
本研究介绍了一种使用 ^{40}Ca^{+} 离子的单离子光学时钟,实现了 4.4×10^{-19} 的超低系统不确定性. 低温环境和先进的冷却技术将提高精度的关键错误来源降至最低.
科学领域:
- 原子物理 原子物理
- 量子计量学 量子计量学
- 光学时钟的使用方法
背景情况:
- 光学原子钟对于基础物理学和计量学至关重要.
- 捕获离子光学时钟面临环境噪音和系统不确定性的挑战.
研究的目的:
- 开发基于40Ca^{+}离子的高精度单离子光学时钟.
- 尽量减少系统的不确定性,特别是来自黑体辐射和多普勒位移的不确定性.
- 为了研究冷环境对被困离子钟的好处.
主要方法:
- 使用了40Ca^{+}离子的4S_{1/2}→3D_{5/2}过渡.
- 在液冷环境中运行时钟.
- 实施了精细的温度评估和3D侧带冷却技术.
- 准确地确定了平均的齐曼系数.
主要成果:
- 取得了 4.4×10^{-19} 的总系统不确定性.
- 来自黑体辐射和二次多普勒转移的频率不确定性减少.
- 显著减少二次 Zeeman 转移不确定性,确定 Zeeman 系数为 14.345 (((15) Hz/mT2.2.
- 由于环境电场噪声,观察到被困离子光学时钟中报告的最低加热率.
结论:
- 在冷环境下,Ca^{+} 离子光学时钟表现出极高的精度.
- 低温操作和先进的冷却可以显著减轻系统性错误.
- 这项工作为捕获离子光学时钟性能设定了新的基准.
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