The cosmological heavy ion collider: Fast thermalization after cosmic inflation

Heavy-ion colliders have revealed the process of “fast thermalization”. This experimental break-through has led to new theoretical tools to study the thermalization process at both weak and strong coupling. We apply this to the reheating epoch of inflationary cosmology, and the formation of a cosmol...

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Main Author: Evan McDonough
Format: Article
Language:English
Published: Elsevier 2020-10-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S037026932030558X
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spelling doaj-648f11377bc64566baf0e64d7c1385782020-11-25T03:41:08ZengElsevierPhysics Letters B0370-26932020-10-01809135755The cosmological heavy ion collider: Fast thermalization after cosmic inflationEvan McDonough0Brown Theoretical Physics Center and Department of Physics, Brown University, 182 Hope Street, Providence, RI, 02903, USA; Center for Theoretical Physics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA; Correspondence to: Brown Theoretical Physics Center and Department of Physics, Brown University, 182 Hope Street, Providence, RI, 02903, USA.Heavy-ion colliders have revealed the process of “fast thermalization”. This experimental break-through has led to new theoretical tools to study the thermalization process at both weak and strong coupling. We apply this to the reheating epoch of inflationary cosmology, and the formation of a cosmological quark gluon plasma (QGP). We compute the thermalization time of the QGP at reheating, and find it is determined by the energy scale of inflation and the shear viscosity to entropy ratio η/s; or equivalently, the tensor-to-scalar ratio and the strong coupling constant at the epoch of thermalization. Thermalization is achieved near-instantaneously in low-scale inflation and in strongly coupled systems, and takes of order or less than a single e-fold of expansion for weakly-coupled systems or after high-scale inflation. We demonstrate that the predictions of inflation are robust to the physics of thermalization, and find a stochastic background of gravitational waves at frequencies accessible by interferometers, albeit with a small amplitude.http://www.sciencedirect.com/science/article/pii/S037026932030558X
collection DOAJ
language English
format Article
sources DOAJ
author Evan McDonough
spellingShingle Evan McDonough
The cosmological heavy ion collider: Fast thermalization after cosmic inflation
Physics Letters B
author_facet Evan McDonough
author_sort Evan McDonough
title The cosmological heavy ion collider: Fast thermalization after cosmic inflation
title_short The cosmological heavy ion collider: Fast thermalization after cosmic inflation
title_full The cosmological heavy ion collider: Fast thermalization after cosmic inflation
title_fullStr The cosmological heavy ion collider: Fast thermalization after cosmic inflation
title_full_unstemmed The cosmological heavy ion collider: Fast thermalization after cosmic inflation
title_sort cosmological heavy ion collider: fast thermalization after cosmic inflation
publisher Elsevier
series Physics Letters B
issn 0370-2693
publishDate 2020-10-01
description Heavy-ion colliders have revealed the process of “fast thermalization”. This experimental break-through has led to new theoretical tools to study the thermalization process at both weak and strong coupling. We apply this to the reheating epoch of inflationary cosmology, and the formation of a cosmological quark gluon plasma (QGP). We compute the thermalization time of the QGP at reheating, and find it is determined by the energy scale of inflation and the shear viscosity to entropy ratio η/s; or equivalently, the tensor-to-scalar ratio and the strong coupling constant at the epoch of thermalization. Thermalization is achieved near-instantaneously in low-scale inflation and in strongly coupled systems, and takes of order or less than a single e-fold of expansion for weakly-coupled systems or after high-scale inflation. We demonstrate that the predictions of inflation are robust to the physics of thermalization, and find a stochastic background of gravitational waves at frequencies accessible by interferometers, albeit with a small amplitude.
url http://www.sciencedirect.com/science/article/pii/S037026932030558X
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