Chung Cheng-Ying, Cho Keng-Chi, Chang Chih-Chiang, Lin Cheng-Hsiang, Yen Wei-Chung, Chen Shean-Jen
Department of Mechanical Engineering, National Central University, Chung-Li, Taiwan.
Appl Opt. 2006 May 20;45(15):3409-14. doi: 10.1364/ao.45.003409.
We develop an adaptive-optics system based on a Mach-Zehnder radial shearing interferometer with liquid-crystal-device (LCD) phase-shift interferometry (PSI). Using accurate phase calibration and transient nematic driving of the LCD, the developed three-step PSI procedure can be achieved in a time of 5 ms. The proposed Mach-Zehnder radial shearing PSI method reconstructs the phase information using a digital signal processor (DSP). The DSP then computes appropriate control signals to drive a deformable mirror in such a way as to eliminate the wavefront distortion. The current adaptive-optics system is capable of suppressing low-frequency thermal disturbances with a signal-to-noise ratio improvement of more than 20 dB and a steady-state phase error of less than 0.02pi root mean square when the control loop is operated at a frequency of 30 Hz.
我们基于带有液晶器件(LCD)相移干涉术(PSI)的马赫曾德尔径向剪切干涉仪开发了一种自适应光学系统。通过对LCD进行精确的相位校准和瞬态向列驱动,所开发的三步PSI程序可在5毫秒内完成。所提出的马赫曾德尔径向剪切PSI方法使用数字信号处理器(DSP)重建相位信息。然后,DSP计算适当的控制信号来驱动可变形镜,以消除波前畸变。当控制环路以30赫兹的频率运行时,当前的自适应光学系统能够抑制低频热干扰,信噪比提高超过20分贝,稳态相位误差小于0.02π均方根。