论文标题
使用Athena X-IFU来约束星系簇中化学富集的起源和模型
Constraining the origin and models of chemical enrichment in galaxy clusters using the Athena X-IFU
论文作者
论文摘要
宇宙在所有尺度上的化学富集都与恒星风和爆炸性超新星现象有关。恒星产生的金属,后来散布在群体内培养基(ICM)上,成为宇宙化学富集以及决定其循环的动态和反馈机制的化石记录。正如hitomi板软X射线光谱仪的结果所证明的那样,高分辨率的X射线光谱是可以在考虑不同金属生产机制的模型之间进行区分的途径,可以预测其恒星祖细胞的性质,质量和/或初始金属性的功能。应通过改善X射线观测值的能量分辨率和有效面积来检测稀有金属(例如Na,Al)并约束但不确定的丰度(例如C,NE,CA,NI)来实现变革结果。 X射线整体场单元(X-IFU)仪器上下一代欧洲X射线天文台雅典娜有望提供此类突破。从四个模拟簇的ICM中的12个丰度比的100 k合成观察开始,我们证明X-IFU将能够在低($ z = 0.1 $)和高($ z = 1 $)的低($ z = 0.1 $)下恢复输入化学富集模型,而统计上排除了所有其他测试模型的99.5%的均超过99.5%的模型。通过修复为模拟数据提供最佳拟合的富集模型,我们还表明X-IFU将在$ \ sim $ 12%以内限制恒星初始质量函数的斜率。这些限制将是我们对宇宙化学富集及其进化的理解的关键要素。
The chemical enrichment of the Universe at all scales is related to stellar winds and explosive supernovae phenomena. Metals produced by stars and later spread at the mega-parsec scale through the intra-cluster medium (ICM) become a fossil record of the chemical enrichment of the Universe and of the dynamical and feedback mechanisms determining their circulation. As demonstrated by the results of the soft X-ray spectrometer onboard Hitomi, high resolution X-ray spectroscopy is the path to to differentiate among the models that consider different metal production mechanisms, predict the outcoming yields, and are function of the nature, mass, and/or initial metallicity of their stellar progenitor. Transformational results shall be achieved through improvements in the energy resolution and effective area of X-ray observatories to detect rare metals (e.g. Na, Al) and constrain yet uncertain abundances (e.g. C, Ne, Ca, Ni). The X-ray Integral Field Unit (X-IFU) instrument onboard the next-generation European X-ray observatory Athena is expected to deliver such breakthroughs. Starting from 100 ks of synthetic observations of 12 abundance ratios in the ICM of four simulated clusters, we demonstrate that the X-IFU will be capable of recovering the input chemical enrichment models at both low ($z = 0.1$) and high ($z = 1$) redshifts, while statistically excluding more than 99.5% of all the other tested combinations of models. By fixing the enrichment models which provide the best fit to the simulated data, we also show that the X-IFU will constrain the slope of the stellar initial mass function within $\sim$12%. These constraints will be key ingredients in our understanding of the chemical enrichment of the Universe and its evolution.