Detection of anti-correlation of hot and cold baryons in galaxy clusters

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作者
Arya Farahi
Sarah L. Mulroy
August E. Evrard
Graham P. Smith
Alexis Finoguenov
Hervé Bourdin
John E. Carlstrom
Chris P. Haines
Daniel P. Marrone
Rossella Martino
Pasquale Mazzotta
Christine O’Donnell
Nobuhiro Okabe
机构
[1] University of Michigan,Department of Physics
[2] Carnegie Mellon University,McWilliams Center for Cosmology, Department of Physics
[3] University of Birmingham,School of Physics and Astronomy
[4] University of Michigan,Department of Astronomy
[5] University of Helsinki,Department of Physics
[6] Max-Planck-Institute for Extraterrestrial Physics,Dipartimento di Fisica
[7] Giessenbachstrasse,Kavli Institute for Cosmological Physics, Department of Astronomy and Astrophysics
[8] Harvard Smithsonian Centre for Astrophysics,Steward Observatory
[9] Università degli Studi di Roma “Tor Vergata”,Department of Physical Science
[10] University of Chicago,Hiroshima Astrophysical Science Center
[11] INAF - Osservatorio Astronomico di Brera,Core Research for Energetic Universe
[12] University of Arizona,undefined
[13] Hiroshima University,undefined
[14] Hiroshima University,undefined
[15] Hiroshima University,undefined
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摘要
The largest clusters of galaxies in the Universe contain vast amounts of dark matter, plus baryonic matter in two principal phases, a majority hot gas component and a minority cold stellar phase comprising stars, compact objects, and low-temperature gas. Hydrodynamic simulations indicate that the highest-mass systems retain the cosmic fraction of baryons, a natural consequence of which is anti-correlation between the masses of hot gas and stars within dark matter halos of fixed total mass. We report observational detection of this anti-correlation based on 4 elements of a 9 × 9-element covariance matrix for nine cluster properties, measured from multi-wavelength observations of 41 clusters from the Local Cluster Substructure Survey. These clusters were selected using explicit and quantitative selection rules that were then encoded in our hierarchical Bayesian model. Our detection of anti-correlation is consistent with predictions from contemporary hydrodynamic cosmological simulations that were not tuned to reproduce this signal.
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