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Near-Infrared Astrometry of Star Clusters with Different Flavors of Adaptive Optics and HST

机译:具有不同风味的自适应光学和HST的星团的近红外占星术

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High-precision infrared astrometry is a powerful tool for the study of resolved stellar populations throughout our Galaxy. We highlight two particular science cases that require precise infrared astrometry: (1) measuring the initial mass function in massive young clusters throughout the Milky Way and (2) finding isolated black holes that photometrically and astrometrically lens background bulge stars. Using astrometric results from these science cases, we perform a comparative analysis of the infrared astrometric capabilities from the Keck single-conjugate adaptive optics (AO) system, the Gemini multi-conjugate AO system, and the Hubble WFC3IR instrument. For the most crowded fields and a small region of interest, we show that Keck's single-conjugate AO system and the well-characterized NIRC2 instrument produce the highest astrometric precision at ~150 μas. However, for targets that cover a wider field of view, both the Gemini South AO Imager (GSAOI) and HST WFC3IR should be considered carefully. GSAOI currently delivers lower astrometric precision than HST WFC3IR for a given integration time; but, programs that require more frequent astrometric measurements over longer periods of time may benefit from the higher availability and possibly longer lifetime of GSAOI.
机译:高精度红外天文测量法是研究整个银河系中已分解恒星种群的有力工具。我们重点介绍了两个需要精确的红外天文测量的特殊科学情况:(1)在整个银河系中测量年轻的年轻星团中的初始质量函数,以及(2)找到以光度和天文学方法将孤立的背景背景凸起恒星的黑洞。利用这些科学案例的天文测量结果,我们对Keck单共轭自适应光学(AO)系统,Gemini多共轭AO系统和Hubble WFC3IR仪器的红外天文测量能力进行了比较分析。对于最拥挤的领域和关注的一个小区域,我们证明了Keck的单共轭AO系统和性能良好的NIRC2仪器在〜150μas处产生了最高的天文精度。但是,对于涵盖更广阔视野的目标,应仔细考虑双子座南AO成像仪(GSAOI)和HST WFC3IR。在给定的积分时间内,GSAOI目前提供的天体精度比HST WFC3IR低。但是,需要在更长的时间内进行更频繁的天文测量的程序可能会受益于GSAOI的更高可用性和更长的使用寿命。

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