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The baryon content of the Cosmic Web

Big-Bang nucleosynthesis indicates that baryons account for 5% of the Universe’s total energy content[1]. In the local Universe, the census of all observed baryons falls short of this estimate by a factor of two[2,3]. Cosmological simulations indicate that the missing baryons have not yet condensed...

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Autores principales: Eckert, Dominique, Jauzac, Mathilde, Shan, HuanYuan, Kneib, Jean-Paul, Erben, Thomas, Israel, Holger, Jullo, Eric, Klein, Matthias, Massey, Richard, Richard, Johan, Tchernin, Céline
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4894470/
https://www.ncbi.nlm.nih.gov/pubmed/26632589
http://dx.doi.org/10.1038/nature16058
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author Eckert, Dominique
Jauzac, Mathilde
Shan, HuanYuan
Kneib, Jean-Paul
Erben, Thomas
Israel, Holger
Jullo, Eric
Klein, Matthias
Massey, Richard
Richard, Johan
Tchernin, Céline
author_facet Eckert, Dominique
Jauzac, Mathilde
Shan, HuanYuan
Kneib, Jean-Paul
Erben, Thomas
Israel, Holger
Jullo, Eric
Klein, Matthias
Massey, Richard
Richard, Johan
Tchernin, Céline
author_sort Eckert, Dominique
collection PubMed
description Big-Bang nucleosynthesis indicates that baryons account for 5% of the Universe’s total energy content[1]. In the local Universe, the census of all observed baryons falls short of this estimate by a factor of two[2,3]. Cosmological simulations indicate that the missing baryons have not yet condensed into virialised halos, but reside throughout the filaments of the cosmic web: a low-density plasma at temperature 10(5)–10(7) K known as the warm-hot intergalactic medium (WHIM)[3,4,5,6]. There have been previous claims of the detection of warm baryons along the line of sight to distant blazars[7,8,9,10] and hot gas between interacting clusters[11,12,13,14]. These observations were however unable to trace the large-scale filamentary structure, or to estimate the total amount of warm baryons in a representative volume of the Universe. Here we report X-ray observations of filamentary structures of ten-million-degree gas associated with the galaxy cluster Abell 2744. Previous observations of this cluster[15] were unable to resolve and remove coincidental X-ray point sources. After subtracting these, we reveal hot gas structures that are coherent over 8 Mpc scales. The filaments coincide with over-densities of galaxies and dark matter, with 5-10% of their mass in baryonic gas. This gas has been heated up by the cluster's gravitational pull and is now feeding its core.
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spelling pubmed-48944702016-06-06 The baryon content of the Cosmic Web Eckert, Dominique Jauzac, Mathilde Shan, HuanYuan Kneib, Jean-Paul Erben, Thomas Israel, Holger Jullo, Eric Klein, Matthias Massey, Richard Richard, Johan Tchernin, Céline Nature Article Big-Bang nucleosynthesis indicates that baryons account for 5% of the Universe’s total energy content[1]. In the local Universe, the census of all observed baryons falls short of this estimate by a factor of two[2,3]. Cosmological simulations indicate that the missing baryons have not yet condensed into virialised halos, but reside throughout the filaments of the cosmic web: a low-density plasma at temperature 10(5)–10(7) K known as the warm-hot intergalactic medium (WHIM)[3,4,5,6]. There have been previous claims of the detection of warm baryons along the line of sight to distant blazars[7,8,9,10] and hot gas between interacting clusters[11,12,13,14]. These observations were however unable to trace the large-scale filamentary structure, or to estimate the total amount of warm baryons in a representative volume of the Universe. Here we report X-ray observations of filamentary structures of ten-million-degree gas associated with the galaxy cluster Abell 2744. Previous observations of this cluster[15] were unable to resolve and remove coincidental X-ray point sources. After subtracting these, we reveal hot gas structures that are coherent over 8 Mpc scales. The filaments coincide with over-densities of galaxies and dark matter, with 5-10% of their mass in baryonic gas. This gas has been heated up by the cluster's gravitational pull and is now feeding its core. 2015-12-03 /pmc/articles/PMC4894470/ /pubmed/26632589 http://dx.doi.org/10.1038/nature16058 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Eckert, Dominique
Jauzac, Mathilde
Shan, HuanYuan
Kneib, Jean-Paul
Erben, Thomas
Israel, Holger
Jullo, Eric
Klein, Matthias
Massey, Richard
Richard, Johan
Tchernin, Céline
The baryon content of the Cosmic Web
title The baryon content of the Cosmic Web
title_full The baryon content of the Cosmic Web
title_fullStr The baryon content of the Cosmic Web
title_full_unstemmed The baryon content of the Cosmic Web
title_short The baryon content of the Cosmic Web
title_sort baryon content of the cosmic web
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4894470/
https://www.ncbi.nlm.nih.gov/pubmed/26632589
http://dx.doi.org/10.1038/nature16058
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