Mining for Gluon Saturation at Colliders
Quantum chromodynamics (QCD) is the theory of strong interactions of quarks and gluons collectively called partons, the basic constituents of all nuclear matter. Its non-abelian character manifests in nature in the form of two remarkable properties: color confinement and asymptotic freedom. At high...
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doaj-42fdc5404f73469c9a73a4ebf65dc2742021-08-26T14:25:27ZengMDPI AGUniverse2218-19972021-08-01731231210.3390/universe7080312Mining for Gluon Saturation at CollidersAstrid Morreale0Farid Salazar1Los Alamos National Laboratory, P.O. Box 1663, Los Alamos, NM 87545, USADepartment of Physics and Astronomy, Stony Brook University, Stony Brook, NY 11794, USAQuantum chromodynamics (QCD) is the theory of strong interactions of quarks and gluons collectively called partons, the basic constituents of all nuclear matter. Its non-abelian character manifests in nature in the form of two remarkable properties: color confinement and asymptotic freedom. At high energies, perturbation theory can result in the growth and dominance of very gluon densities at small-<i>x</i>. If left uncontrolled, this growth can result in gluons eternally growing violating a number of mathematical bounds. The resolution to this problem lies by balancing gluon emissions by recombinating gluons at high energies: phenomena of gluon saturation. High energy nuclear and particle physics experiments have spent the past decades quantifying the structure of protons and nuclei in terms of their fundamental constituents confirming predicted extraordinary behavior of matter at extreme density and pressure conditions. In the process they have also measured seemingly unexpected phenomena. We will give a state of the art review of the underlying theoretical and experimental tools and measurements pertinent to gluon saturation physics. We will argue for the need of high energy electron-proton/ion colliders such as the proposed EIC (USA) and LHeC (Europe) to consolidate our knowledge of QCD knowledge in the small <i>x</i> kinematic domains.https://www.mdpi.com/2218-1997/7/8/312gluon saturationcolor glass condensateQCD |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Astrid Morreale Farid Salazar |
spellingShingle |
Astrid Morreale Farid Salazar Mining for Gluon Saturation at Colliders Universe gluon saturation color glass condensate QCD |
author_facet |
Astrid Morreale Farid Salazar |
author_sort |
Astrid Morreale |
title |
Mining for Gluon Saturation at Colliders |
title_short |
Mining for Gluon Saturation at Colliders |
title_full |
Mining for Gluon Saturation at Colliders |
title_fullStr |
Mining for Gluon Saturation at Colliders |
title_full_unstemmed |
Mining for Gluon Saturation at Colliders |
title_sort |
mining for gluon saturation at colliders |
publisher |
MDPI AG |
series |
Universe |
issn |
2218-1997 |
publishDate |
2021-08-01 |
description |
Quantum chromodynamics (QCD) is the theory of strong interactions of quarks and gluons collectively called partons, the basic constituents of all nuclear matter. Its non-abelian character manifests in nature in the form of two remarkable properties: color confinement and asymptotic freedom. At high energies, perturbation theory can result in the growth and dominance of very gluon densities at small-<i>x</i>. If left uncontrolled, this growth can result in gluons eternally growing violating a number of mathematical bounds. The resolution to this problem lies by balancing gluon emissions by recombinating gluons at high energies: phenomena of gluon saturation. High energy nuclear and particle physics experiments have spent the past decades quantifying the structure of protons and nuclei in terms of their fundamental constituents confirming predicted extraordinary behavior of matter at extreme density and pressure conditions. In the process they have also measured seemingly unexpected phenomena. We will give a state of the art review of the underlying theoretical and experimental tools and measurements pertinent to gluon saturation physics. We will argue for the need of high energy electron-proton/ion colliders such as the proposed EIC (USA) and LHeC (Europe) to consolidate our knowledge of QCD knowledge in the small <i>x</i> kinematic domains. |
topic |
gluon saturation color glass condensate QCD |
url |
https://www.mdpi.com/2218-1997/7/8/312 |
work_keys_str_mv |
AT astridmorreale miningforgluonsaturationatcolliders AT faridsalazar miningforgluonsaturationatcolliders |
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