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Updated: Feb 8, 2026

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从Si腔中获得2.5×10^{-17}的频率稳定性,使用AlGaAs晶体镜
Dahyeon Lee1, Zoey Z Hu1, Ben Lewis1
1University of Colorado, JILA, National Institute of Standards and Technology and the University of Colorado, Boulder, Colorado 80309-0440, USA and Department of Physics, Boulder, Colorado 80309-0390, USA.
Physical review letters
|February 6, 2026
概括
新的晶体涂层显著改善了冷腔中的激光频率稳定性. 光学频率计量学的这一进步为超稳定的激光器和全光学时间表铺平了道路.
科学领域:
- 量子科学 是一个量子科学.
- 光学物理学的光学物理学
- 材料科学 材料科学 材料科学
背景情况:
- 超稳定激光器对于光学频率计量学和量子科学至关重要.
- AlGaAs晶体涂层提供了改善激光频率稳定的潜力.
- 目前存在的局限性是由于化腔内的AlGaAs涂层中的过度噪声.
研究的目的:
- 为了证明晶体涂层在冷腔中的介电涂层上的优势.
- 为了实现空腔稳定激光器的增强分数频率稳定性.
- 探索全光学时间尺度的潜力.
主要方法:
- 使用6厘米长的低温腔,在17K运行,使用AlGaAs结晶涂层镜子.
- 测量了分数频率稳定性和涂层机械损失.
- 结合了两个腔,用于光学频率平均.
- 记录了多年来冷腔的长期频率漂移.
主要成果:
- 在10秒内实现了2.5×10^{-17}的分数频率稳定性,比介电镜的预期好四倍.
- 证明涂层机械损失因子减少了十倍.
- 展示了用于增强稳定性的光学频率平均值.
- 呈现了低温腔的长期频率漂移记录.
结论:
- 晶体涂层在低温腔的介电涂层上具有明显的优势.
- 结果表明,空腔稳定激光器具有10^{-18} 分数稳定性的现实前景.
- 这项工作支持开发用于全光学时间尺度的连续运行的光学局部振荡器.
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