The MAGPI Survey: Drivers of kinematic asymmetries in the ionised gas of z ∼ 0.3 star-forming galaxies

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
R. S. Bagge, C. Foster, A. Battisti, S. Bellstedt, M. Mun, K. Harborne, S. Barsanti, T. Mendel, S. Brough, S.M. Croom, C.D.P. Lagos, T. Mukherjee, Y. Peng, R-S. Remus, G. Santucci, P. Sharda, S. Thater, J. van de Sande, L. M. Valenzuela, E. Wisnioski, T. Zafar, B. Ziegler
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引用次数: 0

Abstract

Galaxy gas kinematics are sensitive to the physical processes that contribute to a galaxy’s evolution. It is expected that external processes will cause more significant kinematic disturbances in the outer regions, while internal processes will cause more disturbances for the inner regions. Using a subsample of 47 galaxies (0.27 < z < 0.36) from the Middle Ages Galaxy Properties with Integral Field Spectroscopy (MAGPI) survey, we conduct a study into the source of kinematic disturbances by measuring the asymmetry present in the ionised gas line-of-sight velocity maps at the 0.5Re (inner regions) and 1.5Re (outer regions) elliptical annuli. By comparing the inner and outer kinematic asymmetries, we aim to better understand what physical processes are driving the asymmetries in galaxies. We find the local environment plays a role in kinematic disturbance, in agreement with other integral field spectroscopy studies of the local universe, with most asymmetric systems being in close proximity to a more massive neighbour. We do not find evidence suggesting that hosting an Active Galactic Nucleus (AGN) contributes to asymmetry within the inner regions, with some caveats due to emission line modelling. In contrast to previous studies, we do not find evidence that processes leading to asymmetry also enhance star formation in MAGPI galaxies. Finally, we find a weak anti-correlation between stellar mass and asymmetry (ie. high stellar mass galaxies are less asymmetric). We conclude by discussing possible sources driving the asymmetry in the ionised gas, such as disturbances being present in the colder gas phase (either molecular or atomic) prior to the gas being ionised, and non-axisymmetric features (e.g., a bar) being present in the galactic disk. Our results highlight the complex interplay between ionised gas kinematic disturbances and physical processes involved in galaxy evolution.
MAGPI调查:z ~ 0.3恒星形成星系电离气体运动不对称性的驱动因素
星系气体运动学对导致星系演化的物理过程非常敏感。预计外部过程将在外区域造成更大的运动扰动,而内部过程将对内区域造成更多的扰动。使用47个星系的子样本(0.27 <z & lt;0.36)来自中世纪星系性质积分场光谱(MAGPI)调查,我们通过测量0.5Re(内区)和1.5Re(外区)椭圆环空电离气体视距速度图中存在的不对称性来研究运动学干扰的来源。通过比较内部和外部的运动不对称,我们的目标是更好地理解是什么物理过程导致了星系中的不对称。我们发现局部环境在运动扰动中起作用,与局部宇宙的其他积分场光谱研究一致,大多数不对称系统靠近更大质量的邻居。我们没有发现证据表明拥有一个活动星系核(AGN)会导致内部区域的不对称,由于发射线模型的一些警告。与之前的研究相反,我们没有发现证据表明导致不对称的过程也会增强MAGPI星系中的恒星形成。最后,我们发现恒星质量与不对称性之间存在微弱的反相关关系。高恒星质量星系的不对称性较小)。最后,我们讨论了电离气体中不对称的可能来源,例如在气体被电离之前,在较冷的气相(分子或原子)中存在的干扰,以及银河系盘中存在的非轴对称特征(例如,棒状结构)。我们的结果突出了星系演化中电离气体运动扰动和物理过程之间复杂的相互作用。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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