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Characterization of a Nanometer Displacement Gauge for the Dimensional Control of Large Optomechanical Structures

机译:大型光学力学结构尺寸控制的纳米位移计的表征

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摘要

We present the design, implementation, and characterization of a heterodyne laser interferometer for nanometer displacement metrology. The purpose is to monitor the 3-D shape of a large optomechanical structure planned for future general relativity experiments. Reaching the target 10(-11)-m displacement uncertainty over 7-m distances and many days' integration periods is a challenging task. The solution here investigated consists of a nonpolarizing Mach-Zehnder layout, featuring an optical cancelable circuit and a holey folding mirror. The instrument working principle and the method for online phase reconstruction are presented, as well as the complete hardware configuration used. The several sources of noise are investigated mathematically and, whenever possible, verified experimentally. The displacement gauge was tested up to one day of continuous data acquisition, showing nanometer-level performance down to 100 mHz, while air index variations and mechanical instabilities are currently the main limiting factors at lower frequencies. This experiment has brought into light many technical issues that will constitute precious "lessons learned" for the future improvements of the system.
机译:我们介绍了用于纳米位移计量的外差激光干涉仪的设计,实现和表征。目的是监测计划用于未来一般相对性实验的大型光学力学结构的三维形状。达到目标10(-11)-M位移不确定性超过7米的距离,并且许多天的整合期是一个具有挑战性的任务。这里的解决方案研究包括非极化Mach-Zehnder布局,具有光学取消的电路和多孔折叠镜。介绍了仪器工作原理和在线相位重建方法,以及所使用的完整硬件配置。数学调查了几种噪声来源,并在实验中进行验证。置换量表高达一天的连续数据采集,显示纳米级性能下降到100 MHz,而空气指数变化和机械稳定性目前是较低频率下的主要限制因素。该实验使浅色许多技术问题,将为未来的系统改进构成珍贵的“经验教训”。

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