Key Laboratory of Luminescence and Optical Information, Ministry of Education, Beijing Jiaotong University, Beijing 100044, China.
Sensors (Basel). 2023 Apr 19;23(8):4108. doi: 10.3390/s23084108.
Using polarization-maintaining fiber (PMF) in dual-frequency heterodyne interferometry has the advantages of reducing the laser's own drift, obtaining high-quality light spots, and improving thermal stability. Using only one single-mode PMF to achieve the transmission of dual-frequency orthogonal, linearly polarized beam requires angular alignment only once to realize the transmission of dual-frequency orthogonal, linearly polarized light, avoiding coupling inconsistency errors, so that it has the advantages of high efficiency and low cost. However, there are still many nonlinear influencing factors in this method, such as the ellipticity and non-orthogonality of the dual-frequency laser, the angular misalignment error of the PMF, and the influence of temperature on the output beam of the PMF. This paper uses the Jones matrix to innovatively construct an error analysis model for the heterodyne interferometry using one single-mode PMF, to realize the quantitative analysis of various nonlinear error influencing factors, and clarify that the main error source is the angular misalignment error of the PMF. For the first time, the simulation provides a goal for the optimization of the alignment scheme of the PMF and the improvement of the accuracy to the sub-nanometer level. In actual measurement, the angular misalignment error of the PMF needs to be smaller than 2.87° to achieve sub-nanometer interference accuracy, and smaller than 0.25° to make the influence smaller than ten picometers. It provides theoretical guidance and an effective means for improving the design of heterodyne interferometry instruments based on PMF and further reducing measurement errors.
在双频外差干涉中使用保偏光纤(PMF)具有减少激光自身漂移、获得高质量光斑和提高热稳定性的优点。仅使用一根单模 PMF 即可实现双频正交、线偏振光束的传输,只需进行一次角度对准即可实现双频正交、线偏振光的传输,避免了耦合不一致误差,因此具有高效率和低成本的优点。然而,这种方法仍然存在许多非线性影响因素,例如双频激光的椭圆度和非正交性、PMF 的角度失准误差以及温度对 PMF 输出光束的影响。本文创新性地使用琼斯矩阵构建了单模 PMF 外差干涉的误差分析模型,实现了对各种非线性误差影响因素的定量分析,并阐明了主要误差源是 PMF 的角度失准误差。首次为 PMF 对准方案的优化和提高精度到亚纳米级提供了模拟目标。在实际测量中,PMF 的角度失准误差需要小于 2.87°才能实现亚纳米级的干涉精度,小于 0.25°才能使影响小于十皮米。它为基于 PMF 的外差干涉仪的设计提供了理论指导和有效手段,进一步降低了测量误差。