概括
我们开发了一种新的空腔增强频率倍增器,用于光学时钟. 这种设备显著降低相位噪声,提高了下一代原子钟的激光稳定性,并实现了更高的询问激光功率.
科学领域:
- 原子,分子和光学物理学
- 量子光学是一种量子光学.
- 激光物理 激光物理
背景情况:
- 时钟激光器的高频稳定性和相相一致性对于光学原子钟至关重要.
- 未来的光学时钟需要更高功率的询问激光器.
- 频率转换是产生特定激光波长的关键过程.
研究的目的:
- 提出一个空腔增强的频率倍增器,用于产生原子钟激光器.
- 为了研究频率倍增器引入的相位噪声.
- 评估加倍器适合提高光学时钟性能.
主要方法:
- 使用了二次波生成 (SHG) 和一个内腔周期性极化酸 (PPLN) 晶体.
- 实施了一个空洞增强的设计,以提高频率翻倍的效率.
- 使用功率光谱密度分析测量过量相位噪声.
- 使用修改的艾伦偏差评估的分数频率不稳定性.
主要成果:
- 为1397nm原子钟激光器实现了高效的频率倍增器.
- 与最先进的激光相比,显示出明显较低的过度相位噪声 (几乎是大小的减少).
- 在1秒的平均时间内达到5.3×10-18的修改的艾伦偏差.
结论:
- 增强空腔的频率加倍器可以提高光学时钟的短期稳定性.
- 翻倍器的高效率与未来光学时钟日益增长的功率要求相兼容.
- 这项技术为提高计量学超稳定激光系统的性能提供了一条途径.
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