Topological charge fluctuations in the Glasma

Abstract The early-time evolution of the system generated in ultra-relativistic heavy ion collisions is dominated by the presence of strong color fields known as Glasma fields. These can be described following the classical approach embodied in the Color Glass Condensate effective theory, which appr...

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Main Author: Pablo Guerrero-Rodríguez
Format: Article
Language:English
Published: SpringerOpen 2019-08-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP08(2019)026
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spelling doaj-c2476ef249964087940d9262f7bb3e272020-11-25T02:58:13ZengSpringerOpenJournal of High Energy Physics1029-84792019-08-012019812010.1007/JHEP08(2019)026Topological charge fluctuations in the GlasmaPablo Guerrero-Rodríguez0CAFPE & Dpto. de Física Teórica y del Cosmos, Universidad de GranadaAbstract The early-time evolution of the system generated in ultra-relativistic heavy ion collisions is dominated by the presence of strong color fields known as Glasma fields. These can be described following the classical approach embodied in the Color Glass Condensate effective theory, which approximates QCD in the high gluon density regime. In this framework we perform an analytical first-principles calculation of the two-point correlator of the divergence of the Chern-Simons current at proper time τ = 0+, which characterizes the early fluctuations of axial charge density in the plane transverse to the collision axis. This object plays a crucial role in the description of anomalous transport phenomena such as the Chiral Magnetic Effect. We compare our results to those obtained under the Glasma Graph approximation, which assumes gluon field correlators to obey Gaussian statistics. While this approach proves to be equivalent to the exact calculation in the limit of short transverse separations, important differences arise at larger distances, where our expression displays a remarkably slower fall-off than the Glasma Graph result (1/r 4 vs. 1/r 8 power-law decay). This discrepancy emerges from the non-linear dynamics mapping the Gaussianly-distributed color source densities onto the Glasma fields, encoded in the classical Yang-Mills equations. Our results support the conclusions reached in a previous work, where we found indications that the color screening of correlations in the transverse plane occurs at relatively large distances.http://link.springer.com/article/10.1007/JHEP08(2019)026Heavy Ion Phenomenology
collection DOAJ
language English
format Article
sources DOAJ
author Pablo Guerrero-Rodríguez
spellingShingle Pablo Guerrero-Rodríguez
Topological charge fluctuations in the Glasma
Journal of High Energy Physics
Heavy Ion Phenomenology
author_facet Pablo Guerrero-Rodríguez
author_sort Pablo Guerrero-Rodríguez
title Topological charge fluctuations in the Glasma
title_short Topological charge fluctuations in the Glasma
title_full Topological charge fluctuations in the Glasma
title_fullStr Topological charge fluctuations in the Glasma
title_full_unstemmed Topological charge fluctuations in the Glasma
title_sort topological charge fluctuations in the glasma
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2019-08-01
description Abstract The early-time evolution of the system generated in ultra-relativistic heavy ion collisions is dominated by the presence of strong color fields known as Glasma fields. These can be described following the classical approach embodied in the Color Glass Condensate effective theory, which approximates QCD in the high gluon density regime. In this framework we perform an analytical first-principles calculation of the two-point correlator of the divergence of the Chern-Simons current at proper time τ = 0+, which characterizes the early fluctuations of axial charge density in the plane transverse to the collision axis. This object plays a crucial role in the description of anomalous transport phenomena such as the Chiral Magnetic Effect. We compare our results to those obtained under the Glasma Graph approximation, which assumes gluon field correlators to obey Gaussian statistics. While this approach proves to be equivalent to the exact calculation in the limit of short transverse separations, important differences arise at larger distances, where our expression displays a remarkably slower fall-off than the Glasma Graph result (1/r 4 vs. 1/r 8 power-law decay). This discrepancy emerges from the non-linear dynamics mapping the Gaussianly-distributed color source densities onto the Glasma fields, encoded in the classical Yang-Mills equations. Our results support the conclusions reached in a previous work, where we found indications that the color screening of correlations in the transverse plane occurs at relatively large distances.
topic Heavy Ion Phenomenology
url http://link.springer.com/article/10.1007/JHEP08(2019)026
work_keys_str_mv AT pabloguerrerorodriguez topologicalchargefluctuationsintheglasma
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