引力透镜显示离子化紫外线光子从遥远的星系逃离
T Emil Rivera-Thorsen1, Håkon Dahle2, John Chisholm3,4
1Institute of Theoretical Astrophysics, University of Oslo, 0315 Oslo, Norway. trive@astro.su.se.
概括
早期星系的紫外线通过狭窄的道逃逸, 电离宇宙. 哈勃望远镜的观测显示了这些来自太阳爆射弧星系的电离光子如何为再电离的时代做出了贡献.
科学领域:
- 宇宙学
- 天体物理学
- 银河系的演变
背景情况:
- 早期的宇宙中含有中性气体, 被来自第一个恒星和星系的紫外线电离.
- 了解电离光子如何逃离星系对于解释再电离时代至关重要.
研究的目的:
- 为了研究从再电离后的星系逃出的电离紫外线光子.
- 了解促进光子逃逸的机制及其对再电离的贡献.
主要方法:
- 使用哈勃太空望远镜观测引力透镜星系PSZ1-ARC G311.6602-18.4624 (太阳爆发弧).
- 分析多次成像的光线,以研究电离光子在光学厚的气体中通过狭窄的通道逃逸.
- 使用引力透镜放大来增强光子逃逸的视图.
主要成果:
- 从一个紧的恒星形成区域观察到光子离子的明亮,多次成像的逃逸.
- 发现了一条狭窄的通道, 使光子通过光学厚度高的气体逃逸.
- 证实了银河系对宇宙再离子化的贡献.
结论:
- 太阳爆发弧提供了电离光子逃逸的直接证据,
- 这项研究表明引力透镜如何帮助观察这些关键过程.
- 多个视线探测星际中性吸收在小尺度.
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