Atacama Large Aperture Submillimeter Telescope (AtLAST) science: Resolving the hot and ionized Universe through the Sunyaev-Zeldovich effect.

Open research Europe Pub Date : 2025-06-05 eCollection Date: 2024-01-01 DOI:10.12688/openreseurope.17449.1
Luca Di Mascolo, Yvette Perrott, Tony Mroczkowski, Srinivasan Raghunathan, Stefano Andreon, Stefano Ettori, Aurora Simionescu, Joshiwa van Marrewijk, Claudia Cicone, Minju Lee, Dylan Nelson, Laura Sommovigo, Mark Booth, Pamela Klaassen, Paola Andreani, Martin A Cordiner, Doug Johnstone, Eelco van Kampen, Daizhong Liu, Thomas J Maccarone, Thomas W Morris, John Orlowski-Scherer, Amélie Saintonge, Matthew Smith, Alexander E Thelen, Sven Wedemeyer
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引用次数: 0

Abstract

An omnipresent feature of the multi-phase "cosmic web" - the large-scale filamentary backbone of the Universe - is that warm/hot (≳ 10 5 K) ionized gas pervades it. This gas constitutes a relevant contribution to the overall universal matter budget across multiple scales, from the several tens of Mpc-scale intergalactic filaments, to the Mpc intracluster medium (ICM), all the way down to the circumgalactic medium (CGM) surrounding individual galaxies from ∼ 1 kpc up to their respective virial radii (∼ 100 kpc). The study of the hot baryonic component of cosmic matter density represents a powerful means for constraining the intertwined evolution of galactic populations and large-scale cosmological structures, for tracing the matter assembly in the Universe and its thermal history. To this end, the Sunyaev-Zeldovich (SZ) effect provides the ideal observational tool for measurements out to the beginnings of structure formation. The SZ effect is caused by the scattering of the photons from the cosmic microwave background off the hot electrons embedded within cosmic structures, and provides a redshift-independent perspective on the thermal and kinematic properties of the warm/hot gas. Still, current and next-generation (sub)millimeter facilities have been providing only a partial view of the SZ Universe due to any combination of: limited angular resolution, spectral coverage, field of view, spatial dynamic range, sensitivity, or all of the above. In this paper, we motivate the development of a wide-field, broad-band, multi-chroic continuum instrument for the Atacama Large Aperture Submillimeter Telescope (AtLAST) by identifying the scientific drivers that will deepen our understanding of the complex thermal evolution of cosmic structures. On a technical side, this will necessarily require efficient multi-wavelength mapping of the SZ signal with an unprecedented spatial dynamic range (from arcsecond to tens of arcminutes) and we employ detailed theoretical forecasts to determine the key instrumental constraints for achieving our goals.

阿塔卡马大口径亚毫米望远镜(AtLAST)科学:通过Sunyaev-Zeldovich效应解析热和电离的宇宙。
多相“宇宙网”——宇宙的大规模丝状主干——的一个无所不在的特征是遍布其中的热/热(约105k)电离气体。这种气体构成了跨多个尺度的总体宇宙物质预算的相关贡献,从几十个Mpc尺度的星系间细丝,到Mpc星系团内介质(ICM),一直到环绕单个星系的环星系介质(CGM),尺度从1 kpc到它们各自的病毒半径(~ 100 kpc)。研究宇宙物质密度的热重子成分是约束星系种群和大尺度宇宙结构交织演化的有力手段,也是追踪宇宙中物质聚集及其热历史的有力手段。为此,Sunyaev-Zeldovich (SZ)效应为测量结构形成的开始提供了理想的观测工具。SZ效应是由宇宙微波背景下的光子与嵌入在宇宙结构中的热电子散射引起的,并为热/热气体的热学和运动学特性提供了红移无关的视角。尽管如此,由于有限的角度分辨率、光谱覆盖范围、视场、空间动态范围、灵敏度或以上所有因素的组合,当前和下一代(亚)毫米设施只能提供SZ宇宙的部分视图。在本文中,我们通过确定将加深我们对宇宙结构复杂热演化的科学驱动因素,激励阿塔卡马大口径亚毫米望远镜(AtLAST)的宽视场,宽带,多时间连续体仪器的发展。在技术方面,这必然需要对SZ信号进行有效的多波长映射,并具有前所未有的空间动态范围(从弧秒到度尺度),我们采用详细的理论预测来确定实现目标的关键仪器限制。
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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