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Laboratory demonstration of accurate and efficient nanometer-level wavefront control for extreme adaptive optics

机译:极端自适应光学器件的精确,高效的纳米级波前控制的实验室演示

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A 32 x 32 microelectricalmechanical systems mirror is controlled in a closed-loop adaptive optics test bed with a spatially filtered wavefront sensor (WFS), Fourier transform wavefront reconstruction, and calibration of references with a high-precision interferometer. When correcting the inherent aberration of the mirror, 0.7 nm rms phase error in the controllable band is achieved. when correcting an etched phase plate with atmospheric statistics, a dark hole 10(3) deeper than the uncontrollable phase is produced in the phase power spectral density. Compensation of the mirror's influence function is done with a Fourier filter, which results in improved loop convergence. Use of the spatial filter is shown to reduce the gain variability of the WFS in a quadcell configuration. (c) 2008 Optical Society of America.
机译:在具有空间滤波波前传感器(WFS),傅立叶变换波前重建和高精度干涉仪基准校准的闭环自适应光学测试床上,可控制32 x 32微机电系统镜。校正反射镜的固有像差时,可控频段内的相位误差为0.7 nm rms。当用大气统计数据校正蚀刻的相板时,在相功率谱密度中会产生比不可控制相深的暗孔10(3)。利用傅立叶滤波器对反射镜的影响函数进行补偿,从而改善了环路收敛性。示出了使用空间滤波器来减小四单元配置中WFS的增益可变性。 (c)2008年美国眼镜学会。

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