跨越宇宙时间的恒星形成

Jonathan Freundlich
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摘要

星系的星际介质由多个阶段组成,包括分子气体、原子气体、电离气体以及尘埃。恒星就是在这种介质中由冷分子气体云形成的,这些气体云会因引力吸引而坍缩。在恒星的整个生命过程中,它们会释放出强大的辐射场和恒星风,在生命结束时还会发生超新星爆炸。这些过程有助于搅动湍流星际介质,并通过加热、电离和排出部分气体来调节恒星的形成。然而,恒星的形成在整个宇宙历史中并不是均匀进行的,在过去的 100 亿年中,恒星的形成数量减少了一个数量级。要了解恒星形成的这种逐渐减少的过程,并评估恒星形成效率的可能变化,就必须对恒星形成的分子气体库进行探测。我在 2023 年 3 月 13-17 日于加德满都举行的第十届等离子体物理与技术前沿国际会议上发表了演讲,在这篇文章中,我回顾了多相星际介质和恒星形成的一些方面,重点是中性相和电离相之间的相互作用,并介绍了最近和正在进行的对典型恒星形成星系中分子气体含量的观测,这些观测跨越了宇宙时间和不同环境。我还介绍了我们从理论模型和模拟中对恒星形成星系的一些认识。
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Star formation across cosmic time

The interstellar medium of galaxies is composed of multiple phases, including molecular, atomic, and ionized gas, as well as dust. Stars are formed within this medium from cold molecular gas clouds, which collapse due to their gravitational attraction. Throughout their life, stars emit strong radiation fields and stellar winds, and they can also explode as supernovae at the end of their life. These processes contribute to stirring the turbulent interstellar medium and regulate star formation by heating up, ionizing, and expelling part of the gas. However, star formation does not proceed uniformly throughout the history of the Universe and decrease by an order of magnitude in the last ten billion years. To understand this winding-down of star formation and assess possible variations in the efficiency of star formation, it is crucial to probe the molecular gas reservoirs from which stars are formed. In this article following my presentation at the 10th International Conference on Frontiers of Plasma Physics and Technology held in Kathmandu from 13–17 March 2023, I review some aspects of the multiphase interstellar medium and star formation, with an emphasis on the interplay between neutral and ionized phases, and present recent and ongoing observations of the molecular gas content in typical star-forming galaxies across cosmic time and in different environments. I also present some of our understanding of star-forming galaxies from theoretical models and simulations.

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Editorial board Frontiers of plasma physics and technology 2023 Corrigendum regarding missing disclaimer statements in previously published articles Physicochemical properties and antimicrobial efficacy of argon cold atmospheric pressure plasma jet activated liquids – a comparative study Early applications of Neural Networks to plasma science: Architectures, solutions, and impact.
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