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High-precision astrometry laboratory demonstration for exoplanet detection using a diffractive pupil telescope

机译:使用衍射瞳孔望远镜的高精度天空测量实验室实验室证明外出检测

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Detection of earth-size exoplanets using the astrometric signal of the host star requires sub microarcsecond measurement precision. One major challenge in achieving this precision using a medium-size (<2-m) space telescope is the calibration of dynamic distortions. The researchers propose a diffractive pupil technique that uses an array of approximately 5um dots on the primary mirror that generate polychromatic diffraction spikes in the focal plane. The diffraction spikes encode optical distortions in the optical system and may be used to calibrate astrometric measurements. This concept can be used simultaneously with coronagraphy for exhaustive characterization of exoplanets (mass, spectra, orbit). At the University of Arizona, a high precision astrometry laboratory was developed to demonstrate the capabilities of this diffractive pupil concept. The researchers aim to demonstrate that the diffractive pupil can improve current limiting factors of astrometric accuracy. This paper describes this laboratory and the results showing that this technique can effectively calibrate dynamic distortions
机译:使用主星的天体测量信号检测接地大小的EXOPLANET需要子Microarcsecond测量精度。使用中等尺寸(<2米)太空望远镜实现这种精度的一个主要挑战是动态扭曲的校准。研究人员提出了一种衍射瞳孔技术,该技术在焦点镜上使用大约5um点的阵列,该镜子在焦平面中产生多色衍射尖峰。衍射尖峰编码光学系统中的光学畸变,并且可用于校准天空测量测量。该概念可以同时使用Coronagraphy用于静脉曲张的外延表征(质量,光谱,轨道)。在亚利桑那大学,开发了一种高精度的星形实验室,以证明这种衍射瞳孔概念的能力。研究人员旨在证明衍射瞳孔可以改善风光度精度的电流限制因素。本文介绍了该实验室,结果表明,该技术可以有效地校准动态扭曲

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