努力实现强大的天空相位分集。为 VLT/MUSE-NFM 实施 LIFT

Arseniy Kuznetsov, S. Oberti, B. Neichel, Thierry Fusco
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摘要

最近对 VLT/MUSE 窄场模式(NFM)进行的 IRLOS 升级引入了全瞳孔模式,以提高灵敏度和天空覆盖范围。这就需要用一个用于全孔径光子收集的单透镜来取代2乘以2的夏克-哈特曼(Shack-Hartmann)传感器,这也使得线性化焦平面技术(LIFT)波前传感器的使用成为可能。然而,最初的星空线性化焦平面技术(LIFT)实验显示,由于强烈的多色非共通路径像差(NCPAs),点扩散函数(PSF)结构非常复杂,这使得使用线性化焦平面技术(LIFT)精确检索尖端倾斜和聚焦变得更加复杂。本研究旨在对 VLT/UT4 上的 LIFT 进行首次天空验证,概述测试过程中遇到的挑战,并提出解决方案,以提高 LIFT 在天空运行中的稳健性。我们开发了一种两阶段焦平面波前传感方法,在使用 LIFT 完成尖端倾斜和焦点检索之前,先进行 NCPA 校准步骤。随后,LIFT 使用由此产生的 NCPA 估计值。为了进行校准,我们提出了一种能够直接从天空焦平面 PSF 中检索 NCPA 信息的方法。我们在模拟和天空测试中验证了这种方法的有效性。结果表明,采用两阶段方法显著提高了 LIFT 进行离焦估计的准确性,即使在具有挑战性的低通量条件下也是如此。在实际应用中,LIFT 作为慢速真实聚焦传感器的功效已得到证实。然而,将 NCPA 校准与 LIFT 集成在一起对于验证其在实际系统中的实际应用至关重要。此外,建议的校准步骤可作为一种独立的微创方法,用于评估天空中的 NCPA。
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Striving towards robust phase diversity on-sky. Implementing LIFT for VLT/MUSE-NFM
The recent IRLOS upgrade for VLT/MUSE narrow field mode (NFM) introduced a full-pupil mode to enhance sensitivity and sky coverage. This involved replacing the 2times 2 Shack-Hartmann sensor with a single lens for full-aperture photon collection, which also enabled the engagement of the linearized focal-plane technique (LIFT) wavefront sensor instead. However, initial on-sky LIFT experiments have highlighted a complex point spread function (PSF) structure due to strong and polychromatic non-common path aberrations (NCPAs), complicating the accurate retrieval of tip-tilt and focus using LIFT. This study aims to conduct the first on-sky validation of LIFT on VLT/UT4, outline challenges encountered during the tests, and propose solutions for increasing the robustness of LIFT in on-sky operations. We developed a two-stage approach to focal-plane wavefront sensing, where tip-tilt and focus retrieval done with LIFT is preceded by the NCPA calibration step. The resulting NCPA estimate is subsequently used by LIFT. To perform the calibration, we proposed a method capable of retrieving the information about NCPAs directly from on-sky focal-plane PSFs. We verified the efficacy of this approach in simulated and on-sky tests. Our results demonstrate that adopting the two-stage approach has led to a significant improvement in the accuracy of the defocus estimation performed by LIFT, even under challenging low-flux conditions. The efficacy of LIFT as a slow and truth focus sensor in practical scenarios has been demonstrated. However, integrating NCPA calibration with LIFT is essential to verifying its practical application in the real system. Additionally, the proposed calibration step can serve as an independent and minimally invasive approach to evaluate NCPA on-sky.
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