J. Dumayne, I. Hook, S. Williams, G. A. Lowes, D. Head, A. Fritz, O. Graur, B. Holwerda, A. Humphrey, A. Milligan, M. Nicholl, B. Roukema, P. Wiseman
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We have used simulations to quantify the improvement in host-galaxy stellar mass (M*) measurements when supplementing photometry from Rubin with spectroscopy from the 4-metre Multi-Object Spectroscopic Telescope (4MOST) instrument. We provide results in the form of expected uncertainties in M* for galaxies with 0.1 < z < 0.9 and 18 < rAB < 25. We show that for galaxies mag 22 and brighter, combining Rubin and 4MOST data reduces the uncertainty measurements of galaxy M* by more than a factor of 2 compared with Rubin data alone. This applies for elliptical and Sc type hosts. We demonstrate that the reduced uncertainties in M* lead to an improvement of 7 per cent in the precision of the ‘mass step’ correction. 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引用次数: 0
摘要
鲁宾天文台为期10年的时空遗产调查将观测近200亿个星系。对于每一个星系,这些性质都可以推断出来。每年观测到的大约105个星系将包含Ia型超新星(SNe),这使得大规模计算SN宿主星系的性质成为可能。测量SN宿主星系的性质有两个主要目的。首先,宿主星系类型和超新星类型之间存在已知的相关性,这可以用来帮助对SNe进行分类。其次,Ia型超新星表现出宿主星系特性与超新星峰值亮度之间的相关性,这对它们在宇宙学中作为标准烛光的使用具有重要意义。我们使用模拟来量化宿主星系恒星质量(M*)测量的改进,当用4米多目标光谱望远镜(4MOST)仪器补充鲁宾的光度测量时。对于0.1 < z < 0.9和18 < rAB < 25的星系,我们以M*的预期不确定度的形式提供了结果。我们表明,对于22等及更亮的星系,与单独的鲁宾数据相比,将鲁宾和4MOST数据结合起来,可以将星系M*的不确定性测量降低2倍以上。这适用于椭圆型和Sc型主机。我们证明M*中不确定性的减少导致“质量步进”校正精度提高7%。我们期望我们对宿主星系特性的改进测量有助于鲁宾观测到的SNe的光度分类。
Using 4MOST to refine the measurement of galaxy properties: A case study of Supernova hosts
The Rubin Observatory’s 10-year Legacy Survey of Space and Time will observe near to 20 billion galaxies. For each galaxy the properties can be inferred. Approximately 105 galaxies observed per year will contain Type Ia supernovae (SNe), allowing SN host-galaxy properties to be calculated on a large scale. Measuring the properties of SN host-galaxies serves two main purposes. The first is that there are known correlations between host-galaxy type and supernova type, which can be used to aid in the classification of SNe. Secondly, Type Ia SNe exhibit correlations between host-galaxy properties and the peak luminosities of the SNe, which has implications for their use as standardisable candles in cosmology. We have used simulations to quantify the improvement in host-galaxy stellar mass (M*) measurements when supplementing photometry from Rubin with spectroscopy from the 4-metre Multi-Object Spectroscopic Telescope (4MOST) instrument. We provide results in the form of expected uncertainties in M* for galaxies with 0.1 < z < 0.9 and 18 < rAB < 25. We show that for galaxies mag 22 and brighter, combining Rubin and 4MOST data reduces the uncertainty measurements of galaxy M* by more than a factor of 2 compared with Rubin data alone. This applies for elliptical and Sc type hosts. We demonstrate that the reduced uncertainties in M* lead to an improvement of 7 per cent in the precision of the ‘mass step’ correction. We expect our improved measurements of host-galaxy properties to aid in the photometric classification of SNe observed by Rubin.