The First Chemical Census of the Milky Way’s Nuclear Star Cluster

Govind Nandakumar, Nils Ryde, Mathias Schultheis, R. Michael Rich, Paola di Matteo, Brian Thorsbro and Gregory Mace
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引用次数: 0

Abstract

An important step in understanding the formation and evolution of the nuclear star cluster (NSC) is to investigate its chemistry and chemical evolution. Additionally, exploring the NSC’s relationship to the other structures in the Galactic center and the Milky Way disks is of great interest. Extreme optical extinction has previously prevented optical studies, but near-IR high-resolution spectroscopy is now possible. Here, we present a detailed chemical abundance analysis of 19 elements—more than 4 times as many as previously published—for nine stars in the NSC of the Milky Way, observed with the Immersion GRating INfrared Spectrometer on the Gemini South telescope. This study provides new, crucial observational evidence to shed light on the origin of the NSC. We demonstrate that it is possible to probe a variety of nucleosynthetic channels, reflecting different chemical evolution timescales. Our findings reveal that the NSC trends for the elements F, Mg, Al, Si, S, K, Ca, Ti, Cr, Mn, Co, Ni, Cu, and Zn, as well as for the s-process elements Ba, Ce, Nd, and Yb, generally follow the inner-bulge trends within uncertainties. This suggests a likely shared evolutionary history, and our results indicate that the NSC population is consistent with the chemical sequence observed in the inner Galaxy (the inner-disk sequence). However, we identify a significant and unexplained difference in the form of higher Na abundances in the NSC compared to the inner bulge. This is also observed in few Galactic globular clusters and may suggest a common enrichment process at work in all these systems.
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银河系核星团的第一次化学普查
了解核星团(NSC)的形成和演化的重要步骤是研究其化学和化学演化。此外,探索NSC与银河系中心和银河系盘的其他结构的关系是非常有趣的。极端的光学消光以前阻碍了光学研究,但近红外高分辨率光谱学现在是可能的。在这里,我们展示了一份详细的19种元素的化学丰度分析——比之前发表的多4倍多——对银河系NSC中的9颗恒星进行了观察,使用的是双子座南望远镜上的浸入式光栅红外光谱仪。这项研究为阐明NSC的起源提供了新的、关键的观察证据。我们证明有可能探测各种核合成通道,反映不同的化学演化时间尺度。我们的研究结果表明,元素F、Mg、Al、Si、S、K、Ca、Ti、Cr、Mn、Co、Ni、Cu和Zn以及S过程元素Ba、Ce、Nd和Yb的NSC趋势在不确定范围内通常遵循内凸趋势。这表明可能存在共同的进化史,我们的结果表明NSC种群与银河系内部观察到的化学序列(内盘序列)一致。然而,我们发现了一个显著的和无法解释的差异,即与内凸起相比,NSC中Na丰度更高。在一些银河系球状星团中也观察到这一点,这可能表明在所有这些系统中都有一个共同的富集过程。
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