论文标题

使用其物理和LY $α$排放属性预测星系的LYC排放

Predicting LyC emission of galaxies using their physical and Ly$α$ emission properties

论文作者

Maji, Moupiya, Verhamme, Anne, Rosdahl, Joakim, Garel, Thibault, Blaizot, Jeremy, Mauerhofer, Valentin, Pittavino, Marta, Feser, Maria-Pia Victoria, Chuniaud, Mathieu, Kimm, Taysun, Katz, Harley, Haehnelt, Martin

论文摘要

理解为宇宙电离提供动力的来源和过程的主要困难是,由于那些光子的途中,由于那些光子在该时期的中性氢气中,不可能直接探测该时期的电离莱曼连续辐射(LYC)辐射。因此,必须在电离时代使用星系的其他特性来构建一个模型以准确预测LYC发射。 近年来,研究表明,星系中的LYC发射可能与其LYA排放相关。在这里,我们通过在狮身人面像宇宙学模拟中分析高Z的数千个星系来研究这种相关性。我们使用LYA辐射传输代码Rascas进行后处理这些星系,并分析LYA -LYC连接。 我们发现Lya和Lyc的亮度彼此之间有密切相关,尽管分散。 LYA和LYC逃生部分之间在最明亮的Lya发射器中存在正相关(> $ 10^{41} $ erg/s),类似于最近的观察性研究。但是,当我们还包括fally lya发射器(LAE)时,相关性消失,这表明观察到的关系可能是由选择效应驱动的。我们还发现,明亮的Laes是电源的主要贡献者($> 10^{40} $ erg/s星系贡献$> 90 \%$ $ lyc排放)。最后,我们使用多元线性回归构建预测模型,在其中使用模拟星系的物理和LYA特性来预测其内在和逃脱LYC的亮度,并具有很高的精度。我们发现,预测银河系逃脱的LYC光度的最重要的星系特性是其逃脱的Lya发光度,气体质量,气体金属性和SFR。 这些模型对于预测星系中的LYC排放非常有用,并可以帮助我们确定电离的来源。

The primary difficulty in understanding the sources and processes that powered cosmic reionization is that it is not possible to directly probe the ionizing Lyman Continuum (LyC) radiation at that epoch as those photons have been absorbed by the intervening neutral hydrogen in the IGM on their way to us. It is therefore imperative to build a model to accurately predict LyC emission using other properties of galaxies in the reionization era. In recent years, studies have shown that the LyC emission from galaxies may be correlated to their Lya emission. Here, we study this correlation by analyzing thousands of galaxies at high-z in the SPHINX cosmological simulation. We post-process these galaxies with the Lya radiative transfer code RASCAS and analyze the Lya - LyC connection. We find that the Lya and LyC luminosities are strongly correlated with each other, although with dispersion. There is a positive correlation between Lya and LyC escape fractions in the brightest Lya emitters (>$10^{41}$ erg/s), similar to the recent observational studies. However, when we also include fainter Lya emitters (LAEs), the correlation disappears, which suggests that the observed relationship may be driven by selection effects. We also find that bright LAEs are dominant contributors to reionization ($> 10^{40}$ erg/s galaxies contribute $> 90\%$ of LyC emission). Finally, we build predictive models using multivariate linear regression where we use the physical and the Lya properties of simulated galaxies to predict their intrinsic and escaping LyC luminosities with a high degree of accuracy. We find that the most important galaxy properties to predict the escaping LyC luminosity of a galaxy are its escaping Lya luminosity, gas mass, gas metallicity, and SFR. These models can be very useful to predict LyC emissions from galaxies and can help us identify the sources of reionization.

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