论文标题

恒星角动量分布与星系形态有关

Stellar angular momentum distribution linked to galaxy morphology

论文作者

Sweet, Sarah M., Glazebrook, Karl, Obreschkow, Danail, Fisher, Deanne B., Burkert, Andreas, Lagos, Claudia D. P., Salcedo, Juan M. Espejo

论文摘要

我们研究了24个CALICA星系的高质量样本,研究了涵盖广泛的视觉形态的高质量样本中的空间分辨恒星特异性角动量$ j _*$。归一化$ s = j _*/j _ {*平均值} $,pdf($ s $)的Spaxel概率密度函数的形状显着偏离了深色物质光环中巴里恩斯预期的近乎通用的初始分布,并且可以通过去除和重新分配和重新分配的Galaxy形成中预期的Baryonic效应来解释。此外,我们发现观察到的PDF($ s $)的形状与光度法形态显着相关,因为晚期星系具有与正常分布相似的PDF($ s $),而早期类型的pDF($ s $)具有强大的PDF($ s $),因此由于低角度动量材料过多。已知可以容纳伪内的星系(Bulge sersic指数$ n_b <2.2 $)往往具有偏斜的凸起PDF($ s $),带有偏斜$(B_ {1RB})\ LISHSIMSIM0.8 $。 PDF($ S $)编码运动学和光度信息,似乎是形态学的强大示踪剂。它的使用是出于渴望从基于观察者偏见的基于传统的分类分类转移到银河系的基本基本(恒星质量,角度动量)特性的愿望。将来,PDF($ s $)也可能是一种运动学分解工具。

We study the spatially-resolved stellar specific angular momentum $j_*$ in a high-quality sample of 24 CALIFA galaxies covering a broad range of visual morphology, accounting for stellar velocity and velocity dispersion. The shape of the spaxel-wise probability density function of normalised $s=j_*/j_{*mean}$, PDF($s$), deviates significantly from the near-universal initial distribution expected of baryons in a dark matter halo and can be explained by the expected baryonic effects in galaxy formation that remove and redistribute angular momentum. Further we find that the observed shape of the PDF($s$) correlates significantly with photometric morphology, where late-type galaxies have PDF($s$) that is similar to a normal distribution, whereas early types have a strongly-skewed PDF($s$) resulting from an excess of low-angular momentum material. Galaxies that are known to host pseudobulges (bulge Sersic index $n_b <2.2$) tend to have less skewed bulge PDF($s$), with skewness $(b_{1rb})\lesssim0.8$. The PDF($s$) encodes both kinematic and photometric information and appears to be a robust tracer of morphology. Its use is motivated by the desire to move away from traditional component-based classifications which are subject to observer bias, to classification on a galaxy's fundamental (stellar mass, angular momentum) properties. In future, PDF($s$) may also be useful as a kinematic decomposition tool.

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