论文标题
原始的内星系调查(Pigs)II:以银河系内最贫穷的人群揭示
The Pristine Inner Galaxy Survey (PIGS) II: Uncovering the most metal-poor populations in the inner Milky Way
论文作者
论文摘要
贫困的恒星是追踪银河系早期历史以及学习第一代恒星的重要工具。模拟表明,最古老的金属贫困恒星将在内星系中找到。然而,典型的凸出调查缺乏金属性低([Fe/h] <-1.0)恒星,因为内星系主要富含金属。原始的内星系调查(PIGS)的目的是研究该区域中的金属贫困和非常贫穷的(VMP,[Fe/H] <-2.0)恒星。在猪中,从CFHT的金属敏感性CAHK光度法中选择了用于光谱随访的金属贫困靶标。这项工作介绍了〜250度^2光度测量以及使用AATE上的Aaomega对〜8000颗恒星的中间分辨率光谱随访。使用两个独立的工具分析了光谱:具有经验光谱库的尤利斯和带有合成光谱库的Ferre。这两种方法之间的比较可以鲁棒地确定恒星参数及其不确定性。我们提出了1300颗VMP恒星的样本 - 迄今为止内部银河系中最大的VMP恒星样品。此外,我们的光谱数据集包括〜1700个水平分支星星,它们是有用的金属贫困标准蜡烛。我们此外表明,猪光度法选择具有前所未有的效率的VMP恒星:最佳候选者的86%/80%(较低/更高的灭绝)满足[Fe/H] <-2.0,较大,较少选择的样本的80%/63%也是如此。我们讨论了这个独特的数据集的未来应用,这将进一步了解我们银河系最内部地区的化学和动态演变。
Metal-poor stars are important tools for tracing the early history of the Milky Way, and for learning about the first generations of stars. Simulations suggest that the oldest metal-poor stars are to be found in the inner Galaxy. Typical bulge surveys, however, lack low metallicity ([Fe/H] < -1.0) stars because the inner Galaxy is predominantly metal-rich. The aim of the Pristine Inner Galaxy Survey (PIGS) is to study the metal-poor and very metal-poor (VMP, [Fe/H] < -2.0) stars in this region. In PIGS, metal-poor targets for spectroscopic follow-up are selected from metallicity-sensitive CaHK photometry from the CFHT. This work presents the ~250 deg^2 photometric survey as well as intermediate-resolution spectroscopic follow-up observations for ~8000 stars using AAOmega on the AAT. The spectra are analysed using two independent tools: ULySS with an empirical spectral library, and FERRE with a library of synthetic spectra. The comparison between the two methods enables a robust determination of the stellar parameters and their uncertainties. We present a sample of 1300 VMP stars -- the largest sample of VMP stars in the inner Galaxy to date. Additionally, our spectroscopic dataset includes ~1700 horizontal branch stars, which are useful metal-poor standard candles. We furthermore show that PIGS photometry selects VMP stars with unprecedented efficiency: 86%/80% (lower/higher extinction) of the best candidates satisfy [Fe/H] < -2.0, as do 80%/63% of a larger, less strictly selected sample. We discuss future applications of this unique dataset that will further our understanding of the chemical and dynamical evolution of the innermost regions of our Galaxy.