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Homodyne laser interferometer involving minimal quadrature phase error to obtain subnanometer nonlinearity

机译:涉及最小正交相位误差的Homodyne激光干涉仪,用于获得亚纳米非线性

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摘要

The demand for minimal cyclic nonlinearity error in laser interferometry is increasing as a result of advanced scientific research projects. Research shows that the quadrature phase error is the main effect that introduces cyclic nonlinearity error, and polarization-mixing cross talk during beam splitting is the main error source that causes the quadrature phase error. In this paper, a new homodyne quadrature laser interferometer configuration based on nonpolarization beam splitting and balanced interference between two circularly polarized laser beams is proposed. Theoretical modeling indicates that the polarization-mixing cross talk is elaborately avoided through nonpolarizing and Wollaston beam splitting, with a minimum number of quadrature phase error sources involved. Experimental results show that the cyclic nonlinearity error of the interferometer is up to 0.6 nm (peak-to-valley value) without any correction and can be further suppressed to 0.2 nm with a simple gain and offset correction method. (C) 2016 Optical Society of America
机译:由于先进的科学研究项目,对激光干涉术中最小的循环非线性误差的需求正在增加。研究表明,正交相位误差是引入周期性非线性误差的主要影响因素,而分束过程中的偏振混合串扰是导致正交相位误差的主要误差源。本文提出了一种基于非偏振分束和两个圆偏振激光束之间的平衡干涉的零差正交激光干涉仪配置。理论模型表明,通过非偏振和Wollaston光束分裂可以避免偏振混合串扰,并且需要使用最少数量的正交相位误差源。实验结果表明,干涉仪的周期性非线性误差高达0.6 nm(峰谷值),无需任何校正,并且可以通过简单的增益和偏移校正方法进一步抑制到0.2 nm。 (C)2016美国眼镜学会

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