Mapping Large-Scale-Structure Evolution over Cosmic Times
arXiv:1908.07533 · doi:10.1007/s10686-021-09755-3
Abstract
This paper outlines the science case for line-intensity mapping with a space-borne instrument targeting the sub-millimeter (microwaves) to the far-infrared (FIR) wavelength range. Our goal is to observe and characterize the large-scale structure in the Universe from present times to the high redshift Epoch of Reionization. This is essential to constrain the cosmology of our Universe and form a better understanding of various mechanisms that drive galaxy formation and evolution. We argue that the proposed frequency range would make it possible to probe important metal cooling lines such as [CII] up to very high redshift as well as a large number of rotational lines of the CO molecule. These can be used to trace molecular gas and dust evolution and constrain the buildup in both the cosmic star formation rate density and the cosmic infrared background (CIB). Moreover, surveys at the highest frequencies will detect FIR lines which are used as diagnostics of galaxies and AGN. Tomography of these lines over a wide redshift range will enable invaluable measurements of the cosmic expansion history at epochs inaccessible to other methods, competitive constraints on the parameters of the standard model of cosmology, and numerous tests of dark matter, dark energy, modified gravity and inflation. To reach these goals, large-scale structure must be mapped over a wide range in frequency to trace its time evolution over a reasonable fraction of the volume of the observable Universe. In addition, the surveyed area needs to be very large to beat cosmic variance and to probe the largest scales where its easier to separate the astrophysical and cosmological contributions to the observed signal. Only, a space-borne mission can properly meet these requirements.
25 pages, 6 figures, ESA Voyage-2050 White Paper
References in corpus (24)
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- H0LiCOW XIII. A 2.4% measurement of from lensed quasars: tension between early and late-Universe probes
- Cosmic Reionization and Early Star-Forming Galaxies: A Joint Analysis of New Constraints from Planck and Hubble Space Telescope
- Cosmology with the SPHEREX All-Sky Spectral Survey
- Testing General Relativity with 21 cm intensity mapping
- Line-Intensity Mapping: 2017 Status Report
- Probing Reionization with the 21 cm-Galaxy Cross Power Spectrum
- The Hobby-Eberly Telescope Dark Energy Experiment (HETDEX): Description and Early Pilot Survey Results
- The mass-Peak Patch algorithm for fast generation of deep all-sky dark matter halo catalogues and its N-Body validation
- A User's Guide to Extracting Cosmological Information from Line-Intensity Maps
- MeerKLASS: MeerKAT Large Area Synoptic Survey
- Constraining the evolution of CII intensity through the end stages of reionization
- The Origins Space Telescope
- Inferring the Redshift Distribution of the Cosmic Infrared Background
- Insights from probability distribution functions of intensity maps
- Joint power spectrum and voxel intensity distribution forecast on the CO luminosity function with COMAP
- The Cosmic Expansion History from Line-Intensity Mapping
- Astrophysics and Cosmology with Line-Intensity Mapping
- Lyα emission from galaxies in the Epoch of Reionization
- WEAVE-QSO: A Massive Intergalactic Medium Survey for the William Herschel Telescope
- Measuring ISW with next-generation radio surveys
- CDIM: Cosmic Dawn Intensity Mapper Final Report
- Observational Evidence For Constant Gas Accretion Rate Since z = 5
- The Origins Space Telescope (OST) Mission Concept Study Interim Report