论文标题

观察到的带有金属性和紧张张力的星系灰尘特性的宇宙演化与模型

Observed cosmic evolution of galaxy dust properties with metallicity and tensions with models

论文作者

Popping, Gergö, Péroux, Céline

论文摘要

星际培养基的尘埃丰度在星系物理学,物质的化学演化以及恒星光的吸收和再发射中起着重要作用。在过去的几年中,观察性和理论研究激增,限制了高达$ z \ sim5 $的星系的粉尘丰富。在这项工作中,我们收集了最新的观察测量值(重点是吸收研究,涵盖$ 6.8 <12 + \ log {(O/h)} <9 $)的金属性和理论预测(来自六个不同的星系构造模型),用于粉尘到粉尘到粉尘(dtg)和粉尘到尘埃(DTM(DTM)(DTM)比率。 DTG和DTM和气相金属性之间观察到的趋势可以通过线性关系来描述,并且没有显示出$ 0 <z <5 $的演变。重要的是,与DTG金属关系的拟合为从毫米尘埃观测中推断出的强大的基于灰尘的气体质量估计值提供了一种精致的工具。观察到的关系中缺乏进化表明,在灰尘的形成和破坏与恒定的时间尺度之间,在宇宙时间内固定金属的恒星形成量很快达到平衡(宇宙为1.2 Gyr旧)。没有任何模型能够在整个金属性和红移探测的整个范围内重现观察到的趋势。模型和仿真之间的比较进一步排除了当前的某些实施,这些实施是银河形成模型中尘埃的生长和破坏,以及对预测的恒星形成时间表的严格约束。

The dust abundance of the interstellar medium plays an important role in galaxy physics, the chemical evolution of matter and the absorption and re-emission of stellar light. The last years have seen a surge in observational and theoretical studies constraining the dust-abundance of galaxies up to $z\sim5$. In this work we gather the latest observational measurements (with a focus on absorption studies covering metallicities in the range $6.8 < 12 + \log{(O/H)}<9$) and theoretical predictions (from six different galaxy formation models) for the dust-to-gas (DTG) and dust-to-metal (DTM) ratio of galaxies. The observed trend between DTG and DTM and gas-phase metallicity can be described by a linear relation and shows no evolution from $0<z<5$. Importantly, the fit to the DTG-metallicity relation provides a refined tool for robust dust-based gas mass estimates inferred from millimeter dust-continuum observations. The lack of evolution in the observed relations are indicative of a quickly reached balance (already when the Universe was 1.2 Gyr old) between the formation and destruction of dust and a constant timescale for star-formation at fixed metallicities over cosmic time. None of the models is able to reproduce the observed trends over the entire range in metallicity and redshift probed. The comparison between models and simulations furthermore rules out some of the current implementations for the growth and destruction of dust in galaxy formation models and places tight constraints on the predicted timescale for star-formation.

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