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On-sky Closed-loop Correction of Atmospheric Dispersion for High-contrast Coronagraphy and Astrometry

机译:高对比度血管素和天空测量的大气分散的天空闭环校正

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Adaptive optic (AO) systems delivering high levels of wavefront correction are now common at observatories. One of the main limitations to image quality after wavefront correction comes from atmospheric refraction. An atmospheric dispersion compensator (ADC) is employed to correct for atmospheric refraction. The correction is applied based on a look-up table consisting of dispersion values as a function of telescope elevation angle. The look-up table-based correction of atmospheric dispersion results in imperfect compensation leading to the presence of residual dispersion in the point spread function (PSF) and is insufficient when sub-milliarcsecond precision is required. The presence of residual dispersion can limit the achievable contrast while employing high-performance coronagraphs or can compromise high-precision astrometric measurements. In this paper, we present the first on-sky closed-loop correction of atmospheric dispersion by directly using science path images. The concept behind the measurement of dispersion utilizes the chromatic scaling of focal plane speckles. An adaptive speckle grid generated with a deformable mirror (DM) that has a sufficiently large number of actuators is used to accurately measure the residual dispersion and subsequently correct it by driving the ADC. We have demonstrated with the Subaru Coronagraphic Extreme AO (SCExAO) system on-sky closed-loop correction of residual dispersion to 1 mas across H-band. This work will aid in the direct detection of habitable exoplanets with upcoming extremely large telescopes (ELTs) and also provide a diagnostic tool to test the performance of instruments which require sub-milliarcsecond correction.
机译:自适应视镜(AO)系统提供高水平的波前校正的系统现在是常见的。波前校正后图像质量的主要局限之一来自大气折射。采用大气分散补偿器(ADC)来校正大气折射。基于作为望远镜仰角的函数组成的查找表来应用校正。基于查找表的大气分散校正导致不完美的补偿,导致点扩散函数(PSF)中存在残余色散,并且当需要子毫马的精度时不足。残留分散体的存在可以限制可实现的对比度,同时采用高性能调节或可以损害高精度的天体测量测量。在本文中,我们通过直接使用科学路径图像介绍了大气分散的第一个天空闭环校正。分散体测量背后的概念利用焦平面斑点的色度缩放。使用具有足够大量的致动器的可变形镜(DM)产生的自适应散斑栅格用于精确测量残余色散,随后通过驱动ADC来校正它。我们已经展示了Subaru Coronagraphic Extreme AO(Scexao)系统的天空闭环校正的剩余分散校正到H-BAND的1个MAS。这项工作将有助于直接检测可居住的外产外出的外延,即将到来的极大的望远镜(elts),也提供了一种诊断工具,以测试需要亚米尔基二十次校正的仪器的性能。

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