湍流波前单像素成像及基于散斑的相位恢复实验装置

Michael Taylor, Mohamadreza Pashazanoosi, S. Hranilovic, C. Flueraru, A. Orth, O. Pitts
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引用次数: 6

摘要

减缓大气影响是任何高通量光学卫星下行链路的重要组成部分。在这项工作中,作为高吞吐量和安全网络挑战计划的一部分,我们将计算成像方法应用于湍流波前估计,通过从模拟湍流损坏的波前捕获散斑图案的单像素图像。特别地,Hadamard图案顺序显示在数字微镜装置(DMD)上,并用于重建湍流散斑图案。这种散斑模式可以用作相位检索算法的输入,以估计产生散斑的波前相位。我们提出了计算湍流散斑成像的概念以及一个实验装置来证明这种方法。利用空间光调制器(SLM)模拟湍流退化波前。然后将这些图像成像到计算成像系统上,该系统采用DMD和使用两个光电二极管的平衡检测。描述了实验设置以及图像重建算法。给出了初步的计算散斑图像,并与数值模拟光束在光学系统中的传播所得到的预测图像进行了比较,结果表明两者非常吻合。
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Experimental Setup for Single-Pixel Imaging of Turbulent Wavefronts and Speckle-Based Phase Retrieval
The mitigation of atmospheric effects is an essential component of any high-throughput optical satellite downlink. In this work, as part of the High-throughput and Secure Networks Challenge Program, we apply computational imaging approaches to turbulent wavefront estimation by capturing single pixel images of the speckle pattern from a simulated turbulence-corrupted wavefront. In particular, Hadamard patterns are sequentially displayed on a digital micromirror device (DMD) and used to reconstruct the turbulent speckle pattern. This speckle pattern can be used as an input to a phase-retrieval algorithm to estimate the wavefront phase that produced the speckle. We present the concepts of computational turbulent speckle imaging along with an experimental setup to demonstrate this approach. A spatial light modulator (SLM) is used to simulate turbulence-degraded wavefronts. These are then imaged onto a computational imaging system implemented with a DMD and balanced detection using two photodiodes. The experimental setup is described along with the image reconstruction algorithm. Preliminary computational speckle images are presented and compared with the predicted image obtained by numerically simulating the beam propagation through the optical system showing close agreement.
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