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Enhanced high-dispersion coronagraphy with KPIC phase Ⅱ: design, assembly and status of sub-modules

机译:具有KPIC阶段的增强的高分散胰凝血性Ⅱ:子模块的设计,装配和状态

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The Keck Planet Imager and Characterizer (KPIC) is a purpose-built instrument for high-dispersion coronagraphy in the K and L bands on Keck. This instrument will provide the first high resolution (R>30,000) spectra of known directly imaged exoplanets and low-mass brown dwarf companions visible in the northern hemisphere. KPIC is developed in phases. Phase I is currently at Keck in the early operations stage, and the phase Ⅱ upgrade will deploy in late 2021. The goal of phase Ⅱ is to maximize the throughput for planet light and minimize the stellar leakage, hence reducing the exposure time needed to acquire spectra with a given signal-to-noise ratio. To achieve this, KPIC phase Ⅱ exploits several innovative technologies that have not been combined this way before. These include a 1000-element deformable mirror for wavefront correction and speckle control, a set of lossless beam shaping optics to maximize coupling into the fiber, a. pupil apodizer to suppress unwanted starlight, a pupil plane vortex mask to enable the acquisition of spectra at and within the diffraction limit, and an atmospheric dispersion compensator. These modules, when combined with the active fiber injection unit present in phase I, will make for a highly efficient exoplanet characterization platform. In this paper, we will present the final design of the optics and opto-mechanics and highlight some innovative solutions we implemented to facilitate all the new capabilities. We will provide an overview of the assembly and laboratory testing of the sub-modules and some of the results. Finally, we will outline the deployment timeline.
机译:Keck Planet成像仪和特征(KPIC)是Keck和L频段的高色散胰凝聚器的目的是一个目的内置仪器。该仪器将提供最先进的高分辨率(R> 30,000)的已知直接成像的外部肌肉和低质量棕色矮人伴侣在北半球可见的低质量棕色矮人伴侣。 KPIC是在阶段开发的。 I阶段I目前在早期运营阶段的Keck,Ⅱ期升级将于2021年底部署。Ⅱ阶段的目标是最大化行星灯的吞吐量,并最大限度地减少恒星泄漏,从而减少了获取所需的曝光时间具有给定信噪比的光谱。为此,KPIC阶段Ⅱ在以前没有这种创新技术利用这种创新技术。这些包括用于波前校正和散斑控制的1000元件可变形镜,一组无损光束整形光学器件,以最大化耦合到光纤中,a。瞳孔抛光剂抑制不需要的星光,使瞳孔平面涡旋掩模能够在衍射极限和大气分散器补偿器处采集光谱。当与I阶段I相中存在的有源光纤注入单元结合时,这些模块将为高效的EXOPLANET表征平台进行。在本文中,我们将介绍光学和光学机械的最终设计,并突出了我们实施的一些创新解决方案,以方便所有新功能。我们将概述子模块的组装和实验室测试和一些结果。最后,我们将概述部署时间表。

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