论文标题

高Z簇星系中分子气的大规模运动学研究:高水平运动不对称的证据

A large-scale kinematic study of molecular gas in high-z cluster galaxies: Evidence for high levels of kinematic asymmetry

论文作者

Cramer, W. J., Noble, A. G., Massingill, K., Cairns, J., Clements, D. L., Cooper, M. C., Demarco, R., Matharu, J., McDonald, M., Muzzin, A., Nantais, J., Rudnick, G., Übler, H., van Kampen, E., Webb, T. M. A., Wilson, G., Yee, H. K. C.

论文摘要

我们研究了Alma在CO(2-1)中追踪的分子气体的解析运动学,在三个不同簇中的25个集群成员星系,红移为$ z \ sim1.6 $。这是该红移簇星系的分子气体运动学的第一个大规模分析。通过通过运动学建模分别估算每个星系的接近和后退侧的旋转曲线,我们量化了总圆速度的差异,以表征每个星系的总体运动学不对称性。我们样品中的3/14个星系的模型具有与在类似红移的田间星系中观察到的相似程度的不对称程度。但是,这在我们的样品中具有11/14个星系,具有明显更高的不对称性,其中一些星系的不对称程度高达$ \ sim $ \ sim $ 50倍,比在类似的红移时观察到的田间星系高50倍。这些极端情况中的一些也具有分子气中看到的单方面尾状形态,支持潮汐和/或RAM压力相互作用的情况。簇中的运动学不对称性与领域的这种鲜明的差异表明,在低降低的宇宙中,密集环境的进化影响(被确定为低降速度的星系进化的主要驱动力)也很活跃。

We investigate the resolved kinematics of the molecular gas, as traced by ALMA in CO (2-1), of 25 cluster member galaxies across three different clusters at a redshift of $z\sim1.6$. This is the first large-scale analysis of the molecular gas kinematics of cluster galaxies at this redshift. By separately estimating the rotation curve of the approaching and receding side of each galaxy via kinematic modeling, we quantify the difference in total circular velocity to characterize the overall kinematic asymmetry of each galaxy. 3/14 of the galaxies in our sample that we are able to model have similar degrees of asymmetry as that observed in galaxies in the field at similar redshift. However, this leaved 11/14 galaxies in our sample with significantly higher asymmetry, and some of these galaxies have degrees of asymmetry of up to $\sim$50 times higher than field galaxies observed at similar redshift. Some of these extreme cases also have one-sided tail-like morphology seen in the molecular gas, supporting a scenario of tidal and/or ram pressure interaction. Such stark differences in the kinematic asymmetry in clusters versus the field suggest the evolutionary influence of dense environments, established as being a major driver of galaxy evolution at low-redshift, is also active in the high-redshift universe.

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