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Design of the CHARIS Integral Field Spectrograph for Exoplanet Imaging

机译:EXOPLANET成像的CASIS整体场光谱仪设计

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Princeton University is building an integral field spectrograph (IFS), the Coronagraphic High Angular Resolution Imaging Spectrograph (CHARIS), for integration with the Subaru Coronagraphic Extreme Adaptive Optics (SCExAO) system and the AO 188 adaptive optics system on the Subaru telescope. CHARIS and SCExAO will measure spectra of hot, young Jovian planets in a coronagraphic image across J, H, and K bands down to an 80 milliarcsecond inner working angle. SCExAO's coronagraphs and wavefront control system will make it possible to detect companions five orders of magnitude dimmer than their parent star. However, quasi-static speckles in the image contaminate the signal from the planet. In an IFS this also causes uncertainty in the spectra due to diffractive cross-contamination, commonly referred to as crosstalk. Post-processing techniques can subtract these speckles, but they can potentially skew spectral measurements, become less effective at small angular separation, and at best can only reduce the crosstalk down to the photon noise limit of the contaminating signal. CHARIS will address crosstalk effects of a high contrast image through hardware design, which drives the optical and mechanical design of the assembly. The work presented here sheds light on the optical and mechanical considerations taken in designing the IFS to provide high signal-to-noise spectra in a coronagraphic image from and extreme adaptive optics image. The design considerations and lessons learned are directly applicable to future exoplanet instrumentation for extremely large telescopes and space observatories capable of detecting rocky planets in the habitable zone.
机译:普林斯顿大学正在建立一个整体场光谱仪(IFS),Caronagraphic高角度分辨率成像光谱仪(Charis),用于与斯巴鲁望远镜上的Subaru Coronagraphic Extreme自适应光学(Scexao)系统和AO 188自适应光学系统集成。 Charis和Scexao将在J,H和K频段跨越J,H和K频段的刺痛图像中测量热,年轻的Jovian行星的光谱到达80毫毫克的内部工作角度。 Scexao的血管血管和波前控制系统将使可以检测伴侣五个级别调光的伴奏比父母明星。然而,图像中的准静态斑点污染了来自行星的信号。在IFS中,由于衍射交叉污染,通常称为串扰,这也会导致光谱中的不确定性。后处理技术可以减去这些斑点,但它们可以潜在地偏斜光谱测量,在小角度分离时变得较低,并且最多只能将串扰降低到污染信号的光子噪声极限。 Charis将通过硬件设计解决高对比度图像的串扰效应,这使得组件的光学和机械设计驱动。工作呈现这里揭示了在设计IFS在从日冕图像和极端自适应光学图像提供高信号对噪声频谱截取的光学和机械方面的考虑光。学习的设计考虑和经验教训是直接适用于能够在可居住的区域中检测岩石行星的极大望远镜和空间观测者的未来外延仪器。

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