相移 Zernike 波前传感器的重建方法

Vincent Chambouleyron, Mahawa Cissé, Maïssa Salama, Sebastiaan Haffert, Vincent Déo, Charlotte Guthery, J. Kent Wallace, Daren Dillon, Rebecca Jensen-Clem, Phil Hinz, Bruce Macintosh
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引用次数: 0

摘要

泽尔奈克波前传感器(ZWFS)是测量入射波前相位最灵敏的光学系统之一,其光子效率接近基本极限。这一特性,再加上它可以轻松测量相位不连续的事实,使其在各种波前控制应用中得到广泛采用,既包括地面应用,也包括未来的天基仪器。尽管 ZWFS 具有诸多优势,但由于其动态范围极其有限,因此面临着巨大的挑战,尤其是在地面操作方面。为了解决这一限制,一种方法是在一般自适应光学(AO)系统之后使用 ZWFS;然而,即使在这种情况下,动态范围仍然是一个令人担忧的问题。本文研究了 ZWFS 的两种光学配置:传统设置及其相移对应装置,后者可生成望远镜瞳孔的两幅不同图像。我们评估了这两种配置的各种重建技术的性能,包括传统的线性重建器和基于梯度下降的方法。评估包括在加州大学圣克鲁斯分校极端自适应光学实验室(SEAL)工作台上进行的模拟和实验测试。我们的研究结果表明,本研究中引入的某些创新重建技术大大提高了 ZWFS 的动态范围,尤其是在使用相移版本时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reconstruction methods for the phase-shifted Zernike wavefront sensor
The Zernike wavefront sensor (ZWFS) stands out as one of the most sensitive optical systems for measuring the phase of an incoming wavefront, reaching photon efficiencies close to the fundamental limit. This quality, combined with the fact that it can easily measure phase discontinuities, has led to its widespread adoption in various wavefront control applications, both on the ground but also for future space-based instruments. Despite its advantages, the ZWFS faces a significant challenge due to its extremely limited dynamic range, making it particularly challenging for ground-based operations. To address this limitation, one approach is to use the ZWFS after a general adaptive optics (AO) system; however, even in this scenario, the dynamic range remains a concern. This paper investigates two optical configurations of the ZWFS: the conventional setup and its phase-shifted counterpart, which generates two distinct images of the telescope pupil. We assess the performance of various reconstruction techniques for both configurations, spanning from traditional linear reconstructors to gradient-descent-based methods. The evaluation encompasses simulations and experimental tests conducted on the Santa cruz Extreme Adaptive optics Lab (SEAL) bench at UCSC. Our findings demonstrate that certain innovative reconstruction techniques introduced in this study significantly enhance the dynamic range of the ZWFS, particularly when utilizing the phase-shifted version.
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