A Near-Infrared, On-Chip Astrophotonic Spectrograph with a Resolving Power of 40,000

P. Gatkine, Nemanja Jovanovic, Greg Sercel, Jeffrey Jewell, J. K. Wallace, Dimitri Mawet
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Abstract

High-resolution spectrographs are essential for major astronomical science cases such as characterizing exoplanet atmospheres, stellar kinematics, chemistry, and probing the mechanisms of the cosmic baryon cycle in the era of extremely large telescopes (ELTs). However, as the telescope diameter grows, the volume, mass, and cost of conventional bulk optics spectrographs on them grow as D2 (D = telescope diameter). The large (several tens of m2) footprints of conventional bulk-optics spectrographs on the ELTs will pose a significant challenge to the thermo-mechanical stability of high-resolution spectrographs, thus reducing their effective precision.
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分辨率为40000的近红外单片天文光子光谱仪
在超大望远镜(elt)时代,高分辨率光谱仪对于表征系外行星大气、恒星运动学、化学以及探测宇宙重子循环机制等重大天文科学案例至关重要。然而,随着望远镜直径的增大,它们上的传统体光学光谱仪的体积、质量和成本也随着D2 (D =望远镜直径)的增大而增大。传统体光学光谱仪在elt上的巨大(几十平方米)足迹将对高分辨率光谱仪的热机械稳定性构成重大挑战,从而降低其有效精度。
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