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Optical vortex position detection with Shack-Hartmann wavefront sensor using extended closed contour method

机译:使用Shack-Hartmann波前传感器的光学涡旋位置检测,采用扩展的封闭轮廓方法

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We propose a new method, based on Shack-Hartmann wavefront sensor (SH-WFS), to achieve high-accuracy position detection of phase singular points of optical vortex (OV) beam. The method calculates evaluation values related to phase slopes of incoming wavefront from Hartmanngram recorded by SH-WFS, and then determines precisely the position of the singular points by calculating the centroid of the 3x3-evaluation-value distribution centered at peak position. A main point is that, in evaluation-value calculation, we use a closed contour connecting the centers of 8-connected, instead of 2x2, lenslet apertures. Theoretical analysis shows that the measurement errors can be greatly reduced in comparison to that of 2x2 closed contour. Proof experiments were performed to confirm its accuracy by measuring singular points of OV beams generated by a liquid crystal on silicon spatial light modulator. The root-mean-square error of the measured position of singular points was approximately 0.052, in units of the lens size of lenslet array used in the SH-WFS. The method achieves fast-speed and sub-lens size spatial resolution detection, is suitable for real-time control applications.
机译:我们提出了一种基于Shack-Hartmann波前传感器(SH-WFS)的新方法,以实现对光涡旋(OV)光束的相位奇异点的高精度位置检测。该方法从SH-WFS记录的Hartmanngram计算与入射波前的相位斜率有关的评估值,然后通过计算以峰位置为中心的3x3评估值分布的重心来精确确定奇异点的位置。要点是,在评估值计算中,我们使用闭合轮廓连接8连通的中心,而不是2x2的小透镜孔径。理论分析表明,与2x2闭合轮廓相比,测量误差可以大大降低。通过测量由硅空间光调制器上液晶产生的OV光束的奇异点,进行了证明实验,以确认其准确性。以SH-WFS中使用的小透镜阵列的透镜尺寸为单位,所测量的奇异点位置的均方根误差约为0.052。该方法实现了快速且亚透镜尺寸的空间分辨率检测,适用于实时控制应用。

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