塞罗丁启用双电光干涉计,用于高精度绝对测距和整合准备的计量学
Xiaoyang Guo1, Xusheng Yang1, Jiawen Zhi1
1National Gravitation Laboratory, MOE Key Laboratory of Fundamental Physical Quantities Measurement, School of Physics, Huazhong University of Science and Technology, Wuhan, 430074, China.
Advanced science (Weinheim, Baden-Wurttemberg, Germany)
|July 30, 2025
概括
一个新的光学频率 (OFC) 测距系统取消了声光学调制器 (AOM),使用了以赛罗丁调制的电光学调制器 (EOM) 来提高精度. 这种无AOM方法实现了纳米距离测量和振动传感,提高了灵活性和效率.
科学领域:
- 光学和光子学 在光学和光子学.
- 计量学 计量学 计量学
- 精密工程 精密工程是指精密的工程.
背景情况:
- 光频 (OFC) 对于精密计量学至关重要.
- 传统的双电光频系统使用声光调制器 (AOM),这限制了性能.
- AOMs限制了调灵活性,响应速度和功率效率在频率的范围.
研究的目的:
- 引入一种无AOM的双电光频测距系统.
- 为了证明卓越的相位连贯性和高精度的距离测量.
- 为了展示增强的灵活性,降低功耗,提高集成兼容性.
主要方法:
- 开发了一种双电光频测距系统.
- 在频率转换中使用了以赛罗丁模块化的电光调制器 (EOM),取代了AOM.
- 通过实验测量和艾伦偏差分析验证了系统.
主要成果:
- 在1毫秒的集成时,实现了纳米范围精度,艾伦偏差低于0.1nm.
- 成功跟踪高频振动高达100kHz的频率.
- 展示了动态的3D表面成像和纳米水面振动检测.
- 在米级到纳米级尺度测量中保持高精度.
结论:
- 与基于AOM的系统相比,无AOM系统提供了卓越的相位连贯性和精度.
- 赛罗丁调节的EOM方法提供了更高的灵活性和更低的射频功耗.
- 这种多功能系统适用于精密计量和高分辨率传感应用.
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