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A Concept for Seeing-Limited Near-IR Spectroscopy on the Giant Magellan Telescope

机译:麦哲伦巨型望远镜的有限可见近红外光谱概念

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We present a simple seeing-limited IR spectrometer design for the Giant Magellan Telescope, with continuous R = 6000 coverage from 0.87-2.50 microns for a 0.7" slit. The instrument's design is based on an asymmetric white pupil echelle layout, with dichroics splitting the optical train into yJ, H, and K channels after the pupil transfer mirror. A separate low-dispersion mode offers single-object R ~ 850 spectra which also cover the full NIR bandpass in each exposure. Catalog gratings and H2RG detectors are used to minimize cost, and only two cryogenic rotary mechanisms are employed, reducing mechanical complexity. The instrument dewar occupies an envelope of 1.8×1.5×1.2 meters, satisfying mass and volume requirements for GMT with comfortable margin. We estimate the system throughput at ~ 35% including losses from the atmosphere, telescope, and instrument (i.e. all coatings, gratings, and sensors). This optical efficiency is comparable to the FIRE spectrograph on Magellan, and we have specified and designed fast cameras so the GMT instrument will have an almost identical pixel scale as FIRE. On the 6.5 meter Magellan telescopes, FIRE is read-noise limited in the y and J bands, similar to other existing near-IR spectrometers and also to JWST/NIRSPEC. GMT's twelve-fold increase in collecting area will therefore offer gains in signal-to-noise per exposure that exceed those of moderate resolution optical instruments, which are already sky-noise limited on today's telescopes. Such an instrument would allow GMT to pursue key early science programs on the Epoch of Reionization, galaxy formation, transient astronomy, and obscured star formation environments prior to commissioning of its adaptive optics system. This design study demonstrates the feasibility of developing relatively affordable spectrometers at the ELT scale, in response to the pressures of joint funding for these telescopes and their associated instrument suites.
机译:我们为巨型麦哲伦望远镜提供了一种简单的,可见度有限的红外光谱仪设计,在0.7“狭缝下,R = 6000覆盖范围从0.87-2.50微米连续。该仪器的设计基于不对称的白色瞳孔echelle布局,并通过分色镜将透过光瞳转移镜后进入yJ,H和K通道,单独的低色散模式可提供单对象R〜850光谱,在每次曝光时也可覆盖整个NIR带通,使用目录光栅和H2RG检测器可最大程度地减少成本低,仅采用了两种低温旋转机构,降低了机械复杂度;杜瓦瓶的外形尺寸为1.8×1.5×1.2米,可满足GMT的质量和体积要求,且裕度适中,我们估计系统的吞吐量约为35%,包括来自大气,望远镜和仪器(即所有涂层,光栅和传感器)的损耗,这种光学效率可与麦哲伦上的FIRE光谱仪相提并论,经过专门设计和设计的快速相机,因此GMT仪器的像素比例几乎与FIRE相同。在6.5米的麦哲伦望远镜上,FIRE在y和J波段的读取噪声受到限制,这与其他现有的近红外光谱仪以及JWST / NIRSPEC相似。因此,GMT的收集面积增加了12倍,每次曝光的信噪比增益将超过中等分辨率光学仪器的增益,而中分辨率光学仪器已经受到当今望远镜的限制。这样的仪器将允许GMT在调试其自适应光学系统之前,进行电离时代,星系形成,瞬变天文学和模糊的恒星形成环境等关键的早期科学计划。这项设计研究表明,响应这些望远镜及其相关仪器套件的共同资助压力,在ELT规模上开发价格相对可承受的光谱仪是可行的。

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