利用集成光子学对系外行星进行零干涉成像:GLINT项目

M. Martinod, B. Norris, S. Gross, A. Arriola, T. Gretzinger, M. Withford, T. Lagadec, P. Tuthill
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引用次数: 1

摘要

随着已确认的系外行星数量攀升至数千颗,系外行星发现的时代正在让位于系外行星的表征。最理想的情况是可以直接对系外行星进行成像。直接成像不仅能提供轨道参数,还能得到大气的化学成分。从有远见的未来仪器获得的数据中,可居住带系外行星显示生物特征的潜力引起了人们的强烈兴趣。然而,这需要同时达到极高的恒星-行星对比度(从104到108)和极高的角分辨率(接近或低于衍射极限)。在被湍流模糊的大气中完成这一切仍然是一个关键的挑战,但这是一个与极端自适应光学相结合的零干涉测量的目标。这种技术克服了对比度的问题,通过破坏性干涉去除星光,允许来自行星的微弱光保留下来。本文介绍了零干涉测量仪器的最新发展:集成光子零器。它允许空间滤波,多个同时基线,同时光度通道和同时测量“零”信号(星光消除后从行星发出的光)以及“反零”信号(包含重定向星光的通道)。利用这些基本的光学原理,提供系外行星系统的成像和微分光谱成为可能。本文描述了一个探索者,它将这些想法实现到一个健壮而紧凑的光子芯片平台上,即GLINT(导光干涉零化技术)项目。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Imaging exoplanets with nulling interferometry using integrated-photonics: the GLINT project
As confirmed exoplanets climb into the thousands, the era of exoplanets discovery is giving way to exoplanet characterization. The most desirable scenario is one where the exoplanet can be directly imaged. Direct imaging not only delivers orbital parameters, but also yields the chemical composition of the atmosphere. The potential for habitable zone exoplanets to exhibit biosignatures in such data from a visionary future instrument drives intense interest. However, this requires to simultaneously reach extremely high star-to-planet contrast (from 104 to 108) and extremely high angular resolution (around and below the diffraction limit). Accomplishing all this through the atmosphere blurred by turbulence remains a critical challenge, yet it is one that nulling interferometry in combination with extreme adaptive optics aims to meet. This technique overcomes the contrast problem by removing the starlight with destructive interference, permitting the faint light coming from the planet to remain. In this paper, we present the latest evolution of nulling interferometry instrumentation: the integrated- photonic nuller. It allows spatial filtering, multiple simultaneous baselines, simultaneous photometric channels and simultaneous measurement of the "nulled" signal (the light emitted from the planet after cancelling the starlight) as well as the "anti-nulled" signal (the channel containing the redirected starlight). Exploiting these fundamental optical principles, the delivery of imaging and differential spectroscopy of exoplanetary systems becomes possible. This paper describes a pathfinder that has implemented these ideas into a robust and compact photonic-chip platform known as the GLINT (Guided-Light Interferometric Nulling Technology) project.
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