Atacama Large Aperture Submillimeter Telescope (AtLAST) science: Gas and dust in nearby galaxies.

Open research Europe Pub Date : 2025-05-23 eCollection Date: 2024-01-01 DOI:10.12688/openreseurope.17459.2
Daizhong Liu, Amelie Saintonge, Caroline Bot, Francisca Kemper, Enrique Lopez-Rodriguez, Matthew Smith, Thomas Stanke, Paola Andreani, Alessandro Boselli, Claudia Cicone, Timothy A Davis, Bendix Hagedorn, Akhil Lasrado, Ann Mao, Serena Viti, Mark Booth, Pamela Klaassen, Tony Mroczkowski, Frank Bigiel, Melanie Chevance, Martin A Cordiner, Luca Di Mascolo, Doug Johnstone, Minju Lee, Thomas Maccarone, Alexander E Thelen, Eelco van Kampen, Sven Wedemeyer
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Abstract

Understanding the physical processes that regulate star formation and galaxy evolution are major areas of activity in modern astrophysics. Nearby galaxies offer unique opportunities to inspect interstellar medium (ISM), star formation (SF), radiative, dynamic and magnetic ( B ) physics in great detail from sub-galactic (kpc) scales to sub-cloud (sub-pc) scales, from quiescent galaxies to starbursts, and from field galaxies to overdensities. In this case study, we discuss the major breakthroughs in this area of research that will be enabled by the Atacama Large Aperture Submillimeter Telescope (AtLAST), a proposed 50-m single-dish submillimeter telescope. The new discovery space of AtLAST comes from its exceptional sensitivity, in particular to extended low surface brightness emission, a very large 2° field of view, and correspondingly high mapping efficiency. This paper focuses on four themes which will particularly benefit from AtLAST: 1) the LMC and SMC, 2) extragalactic magnetic fields, 3) the physics and chemistry of the interstellar medium, and 4) star formation and galaxy evolution. With ~ 1000 - 2000 hour surveys each, AtLAST could deliver deep dust continuum maps of the entire LMC and SMC fields at parsec-scale resolution, high-resolution maps of the magnetic field structure, gas density, temperature and composition of the dense and diffuse ISM in ~ 100 nearby galaxies, as well as the first large-scale blind CO survey in the nearby Universe, delivering molecular gas masses for up to 10 6 galaxies (3 orders of magnitude more than current samples). Through such observing campaigns, AtLAST will have a profound impact on our understanding of the baryon cycle and star formation across a wide range of environments.

阿塔卡马大口径亚毫米望远镜(AtLAST)科学:附近星系中的气体和尘埃。
了解调节恒星形成和星系演化的物理过程是现代天体物理学的主要研究领域。附近的星系提供了独特的机会,可以从亚星系(kpc)尺度到亚云(sub-pc)尺度,从静止星系到星暴,从场星系到超密度,非常详细地观察星际介质(ISM)、恒星形成(SF)、辐射、动态和磁(B→)物理。在本案例研究中,我们讨论了阿塔卡马大口径亚毫米望远镜(AtLAST)将实现的这一研究领域的重大突破,这是一种拟议的50米单碟亚毫米望远镜。AtLAST的新发现空间来自于其卓越的灵敏度,特别是扩展的低表面亮度发射,非常大的2°视场,以及相应的高制图效率。本文重点关注AtLAST将特别受益的四个主题:1)LMC和SMC, 2)河外磁场,3)星际介质的物理和化学,以及4)恒星形成和星系演化。~ 1000 - 2000小时的调查,论述可以提供深粉尘连续的地图整个LMC parsec-scale分辨率和SMC领域,高分辨率的地图磁场结构、气体密度、温度和成分的密度和分散主义~ 100附近的星系,以及第一次大规模盲目有限公司调查在附近的宇宙中,提供分子气体质量10 6星系(3个数量级比当前样本)。通过这样的观测活动,AtLAST将对我们在各种环境下对重子周期和恒星形成的理解产生深远的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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