用于系外行星观测的涡旋光纤零化:实现和第一次照明

IF 1.7 3区 工程技术 Q2 ENGINEERING, AEROSPACE Journal of Astronomical Telescopes Instruments and Systems Pub Date : 2023-09-12 DOI:10.1117/1.jatis.9.3.035002
Daniel Echeverri, Jerry Xuan, Nemanja Jovanovic, Garreth Ruane, Jacques-Robert Delorme, Dimitri Mawet, Bertrand Mennesson, Eugene Serabyn, J. Kent Wallace, Jason Wang, Jean-Baptiste Ruffio, Luke Finnerty, Yinzi Xin, Maxwell Millar-Blanchaer, Ashley Baker, Randall Bartos, Benjamin Calvin, Sylvain Cetre, Greg Doppmann, Michael P. Fitzgerald, Sofia Hillman, Katelyn Horstman, Chih-Chun Hsu, Joshua Liberman, Ronald Lopez, Evan Morris, Jacklyn Pezzato, Caprice L. Phillips, Bin B. Ren, Ben Sappey, Tobias Schofield, Andrew J. Skemer, Connor Vancil, Ji Wang
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引用次数: 0

摘要

涡旋光纤零化(VFN)是一种单孔径干涉测量技术,用于探测和表征距离主星小于衍射光束宽度的系外行星。VFN使用涡流掩模和单模光纤选择性地拒绝星光,同时将离轴行星光与简单的光学设计耦合在一起,可以很容易地在现有的直接成像仪器上实现,可以将光馈送到光纤中。由于其轴对称耦合区域在传统日冕仪的内部工作角内达到峰值,VFN在小距离探测新伴星方面比传统直接成像更有效,从而增加了正在进行的系外行星搜索活动的产量。我们在Keck II望远镜的Keck行星成像仪和特征仪(KPIC)上部署了K波段($2.0{-}2.5~\mu$ m)的VFN模式。在本文中,我们介绍了VFN首次在天空演示的仪器设计和在天空调试的结果,包括行星和恒星的吞吐量测量以及对近距离伴星的预测通量比检测限。该仪器的性能足以在1小时内探测到比$5^{\mathrm{th}}$等的主星暗淡$10^3$倍的伴星,距离为50 mas (1.1 $\lambda/D$)。这使得该仪器能够有效地探测年轻恒星周围的次恒星伴星。我们还讨论了一些改进的途径,这些途径将通过一个因子${>}$ 3减少检测所需的集成时间。
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Vortex fiber nulling for exoplanet observations: implementation and first light
Vortex fiber nulling (VFN) is a single-aperture interferometric technique for detecting and characterizing exoplanets separated from their host star by less than a diffracted beam width. VFN uses a vortex mask and single mode fiber to selectively reject starlight while coupling off-axis planet light with a simple optical design that can be readily implemented on existing direct imaging instruments that can feed light to an optical fiber. With its axially symmetric coupling region peaking within the inner working angle of conventional coronagraphs, VFN is more efficient at detecting new companions at small separations than conventional direct imaging, thereby increasing the yield of on-going exoplanet search campaigns. We deployed a VFN mode operating in K band ($2.0{-}2.5~\mu$m) on the Keck Planet Imager and Characterizer (KPIC) instrument at the Keck II Telescope. In this paper we present the instrument design of this first on-sky demonstration of VFN and the results from on-sky commissioning, including planet and star throughput measurements and predicted flux-ratio detection limits for close-in companions. The instrument performance is shown to be sufficient for detecting a companion $10^3$ times fainter than a $5^{\mathrm{th}}$ magnitude host star in 1 hour at a separation of 50 mas (1.1$\lambda/D$). This makes the instrument capable of efficiently detecting substellar companions around young stars. We also discuss several routes for improvement that will reduce the required integration time for a detection by a factor ${>}$3.
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CiteScore
4.40
自引率
13.00%
发文量
119
期刊介绍: The Journal of Astronomical Telescopes, Instruments, and Systems publishes peer-reviewed papers reporting on original research in the development, testing, and application of telescopes, instrumentation, techniques, and systems for ground- and space-based astronomy.
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