MEMS and the direct detection of exoplanets

Sandrine Thomas, B. Macintosh, R. Belikov
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Abstract

Deformable mirrors, and particularly MEMS, are crucial components for the direct imaging of exoplanets for both ground-based and space-based instruments. Without deformable mirrors, coronagraphs are incapable of reaching contrasts required to image Jupiter-like planets. The system performance is limited by image quality degradation resulting from wavefront error introduced from multiple effects including: atmospheric turbulence, static aberrations in the system, non-common-path aberrations, all of which vary with time. Correcting for these effects requires a deformable mirror with fast response and numerous actuators having moderate stroke. Not only do MEMS devices fulfill this requirement but their compactness permits their application in numerous space- and ground-based instruments, which are often volume- and mass-limited. In this paper, I will briefly explain how coronagraphs work and their requirements. I then will discuss the Extreme Adaptive Optics needed to compensate for the introduced wavefront error and how MEMS devices are a good choice to achieve the performance needed to produce the contrasts necessary to detect exoplanets. As examples, I will discuss a facility instrument for the Gemini Observatory, called the Gemini Planet Imager, that will detect Jupiter-like planets and present recent results from the NASA Ames Coronagraph Experiment laboratory, in the context of a proposed space- based mission called EXCEDE. EXCEDE is planned to focus on protoplanetary disks.
MEMS和系外行星的直接探测
可变形镜,特别是MEMS,是地面和太空仪器直接成像系外行星的关键部件。如果没有可变形的镜面,日冕仪就无法达到拍摄类木星行星所需的对比度。由于大气湍流、系统静态像差、非共径像差等多种影响导致的波前误差会导致图像质量下降,从而限制了系统的性能。纠正这些影响需要一个具有快速响应的可变形镜和许多具有中等行程的致动器。MEMS器件不仅满足这一要求,而且其紧凑性允许其在许多空间和地面仪器中应用,这些仪器通常受到体积和质量的限制。在本文中,我将简要解释日冕仪的工作原理及其要求。然后,我将讨论补偿引入的波前误差所需的极端自适应光学,以及MEMS器件如何成为实现产生检测系外行星所需对比度所需性能的良好选择。作为例子,我将讨论双子座天文台的一种设施仪器,称为双子座行星成像仪,它将探测类木星行星,并呈现美国宇航局艾姆斯日冕仪实验实验室最近的结果,在一个被提议的名为EXCEDE的太空任务的背景下。“超越”计划的重点是原行星盘。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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