论文标题
皇后。 ix。极为金属贫困的星系是非常富含气体的分散剂的系统:JWST是否见证了气态的湍流高Z原始星系?
EMPRESS. IX. Extremely Metal-Poor Galaxies are Very Gas-Rich Dispersion-Dominated Systems: Will JWST Witness Gaseous Turbulent High-z Primordial Galaxies?
论文作者
论文摘要
我们介绍了6个本地极为金属的星系(EMPGS)的运动学,具有低金属性($ 0.016-0.098 \ Z _ {\ odot} $)和低恒星群众($ 10^{4.7} -10} -10^{7.6} {7.6} M _ {7.6} M _ {\ odot} $)。使用8.2 m Subaru,采用深度中高分辨率($ r \ sim7500 $)的积分景光谱,我们解决了具有H $α$发射的EMPG的小内部速度梯度和分散。仔细掩盖了由流入和/或流出的子结构,我们将3维磁盘模型拟合到观察到的H $α$通量,速度和速度分散图。所有EMPG显示的旋转速度($ v _ {\ rm rot} $)为5--23 km s $ s $^{ - 1} $,小于速度分散($σ_{0} $)的17--31 km S $ s $ s $ s $ s $ s $ rot}/σ_{0} = 0.29-0.80 <1 $)系统受流入和/或流出影响的系统。除了两个具有较大不确定性的EMPG外,我们发现EMPG的气体质量分数为$ f _ {\ rm Gas} \ simeq 0.9-1.0 $。将我们的结果与其他H $α$运动学研究进行比较,我们发现$ v _ {\ rm rot}/σ_{0} $减小,$ f _ {\ rm as Gas} $随着金属性的降低,降低恒星质量和提高特定的星级成型速率而增加。我们还发现,模拟的高$ z $($ z \ sim 7 $)形成星系具有类似于观察到的EMPG的气体分数和动态。我们的EMPG观察结果和模拟表明原始星系是富含气体的分散性系统,该系统将由即将面临的James Webb太空望远镜(JWSC)(JWST)的观测值确定为$ z \ sim 7 $。
We present kinematics of 6 local extremely metal-poor galaxies (EMPGs) with low metallicities ($0.016-0.098\ Z_{\odot}$) and low stellar masses ($10^{4.7}-10^{7.6} M_{\odot}$). Taking deep medium-high resolution ($R\sim7500$) integral-field spectra with 8.2-m Subaru, we resolve the small inner velocity gradients and dispersions of the EMPGs with H$α$ emission. Carefully masking out sub-structures originated by inflow and/or outflow, we fit 3-dimensional disk models to the observed H$α$ flux, velocity, and velocity-dispersion maps. All the EMPGs show rotational velocities ($v_{\rm rot}$) of 5--23 km s$^{-1}$ smaller than the velocity dispersions ($σ_{0}$) of 17--31 km s$^{-1}$, indicating dispersion-dominated ($v_{\rm rot}/σ_{0}=0.29-0.80<1$) systems affected by inflow and/or outflow. Except for two EMPGs with large uncertainties, we find that the EMPGs have very large gas-mass fractions of $f_{\rm gas}\simeq 0.9-1.0$. Comparing our results with other H$α$ kinematics studies, we find that $v_{\rm rot}/σ_{0}$ decreases and $f_{\rm gas}$ increases with decreasing metallicity, decreasing stellar mass, and increasing specific star-formation rate. We also find that simulated high-$z$ ($z\sim 7$) forming galaxies have gas fractions and dynamics similar to the observed EMPGs. Our EMPG observations and the simulations suggest that primordial galaxies are gas-rich dispersion-dominated systems, which would be identified by the forthcoming James Webb Space Telescope (JWST) observations at $z\sim 7$.