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Review of results using heavy ion collisions at CMS

Ultrarelativistic heavy ion collisions at the laboratory provide a unique chanceto study quantum chromodynamics (QCD) under extreme temperature (≈150 MeV) anddensity (≈1 GeV/ fm 3) conditions. Over the past decade, experimental resultsfrom LHC have shown further evidence for the formation of the qua...

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Autor principal: Krintiras, Georgios Konstantinos
Lenguaje:eng
Publicado: University of Kansas Libraries 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2723688
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author Krintiras, Georgios Konstantinos
author_facet Krintiras, Georgios Konstantinos
author_sort Krintiras, Georgios Konstantinos
collection CERN
description Ultrarelativistic heavy ion collisions at the laboratory provide a unique chanceto study quantum chromodynamics (QCD) under extreme temperature (≈150 MeV) anddensity (≈1 GeV/ fm 3) conditions. Over the past decade, experimental resultsfrom LHC have shown further evidence for the formation of the quark-gluon plasma(QGP), a phase that is thought to permeate the early Universe and is formed inthe high-density neutron-star cores. Various QCD predictions that model thebehavior of the low-x gluon nuclear density, a poorly explored region, are alsotested. Since the photon flux per ion scales as the square of the emittingelectric charge Z 2 , cross sections of so far elusive photon-induced processesare extremely enhanced as compared to nucleon-nucleon collisions. Here, wereview recent progress on CMS measurements of particle production with largetransverse momentum or mass, photon-initiated processes, jet-induced mediumresponse, and heavy quark production. These high-precision data, along withnovel approaches, offer stringent constraints on initial state, QGP formationand transport parameters, and even parametrizations beyond the standard model.
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spelling cern-27236882021-05-03T08:11:13Zhttp://cds.cern.ch/record/2723688engKrintiras, Georgios KonstantinosReview of results using heavy ion collisions at CMSnucl-exNuclear Physics - ExperimentUltrarelativistic heavy ion collisions at the laboratory provide a unique chanceto study quantum chromodynamics (QCD) under extreme temperature (≈150 MeV) anddensity (≈1 GeV/ fm 3) conditions. Over the past decade, experimental resultsfrom LHC have shown further evidence for the formation of the quark-gluon plasma(QGP), a phase that is thought to permeate the early Universe and is formed inthe high-density neutron-star cores. Various QCD predictions that model thebehavior of the low-x gluon nuclear density, a poorly explored region, are alsotested. Since the photon flux per ion scales as the square of the emittingelectric charge Z 2 , cross sections of so far elusive photon-induced processesare extremely enhanced as compared to nucleon-nucleon collisions. Here, wereview recent progress on CMS measurements of particle production with largetransverse momentum or mass, photon-initiated processes, jet-induced mediumresponse, and heavy quark production. These high-precision data, along withnovel approaches, offer stringent constraints on initial state, QGP formationand transport parameters, and even parametrizations beyond the standard model.Ultrarelativistic heavy ion collisions at the laboratory provide a unique chance to study quantum chromodynamics (QCD) under extreme temperature (${\approx}150\,\mathrm{MeV}$) and density (${\approx}1\,\mathrm{GeV}/\mathrm{fm}^3$) conditions. Over the past decade, experimental results from LHC have shown further evidence for the formation of the quark-gluon plasma (QGP), a phase that is thought to permeate the early Universe and is formed in the high-density neutron-star cores. Various QCD predictions that model the behavior of the low-$x$ gluon nuclear density, a poorly explored region, are also tested. Since the photon flux per ion scales as the square of the emitting electric charge $Z^2$, cross sections of so far elusive photon-induced processes are extremely enhanced as compared to nucleon-nucleon collisions. Here, we review recent progress on CMS measurements of particle production with large transverse momentum or mass, photon-initiated processes, jet-induced medium response, and heavy quark production. These high-precision data, along with novel approaches, offer stringent constraints on initial state, QGP formation and transport parameters, and even parametrizations beyond the standard model.University of Kansas LibrariesarXiv:2006.05556CMS-CR-2020-106oai:cds.cern.ch:27236882020-06-09
spellingShingle nucl-ex
Nuclear Physics - Experiment
Krintiras, Georgios Konstantinos
Review of results using heavy ion collisions at CMS
title Review of results using heavy ion collisions at CMS
title_full Review of results using heavy ion collisions at CMS
title_fullStr Review of results using heavy ion collisions at CMS
title_full_unstemmed Review of results using heavy ion collisions at CMS
title_short Review of results using heavy ion collisions at CMS
title_sort review of results using heavy ion collisions at cms
topic nucl-ex
Nuclear Physics - Experiment
url http://cds.cern.ch/record/2723688
work_keys_str_mv AT krintirasgeorgioskonstantinos reviewofresultsusingheavyioncollisionsatcms