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A Hybrid Strong/Weak Coupling Approach to Jet Quenching
We propose and explore a new hybrid approach to jet quenching in a strongly coupled medium. The basis of this phenomenological approach is to treat physics processes at different energy scales differently. The high-$Q^2$ processes associated with the QCD evolution of the jet from production as a sin...
Autores principales: | , , , , |
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Lenguaje: | eng |
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2014
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1007/JHEP09(2015)175 https://dx.doi.org/10.1007/JHEP10(2014)019 https://dx.doi.org/10.1007/JHEP09(2015)175 http://cds.cern.ch/record/1701351 |
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author | Casalderrey-Solana, Jorge Gulhan, Doga Can Milhano, José Guilherme Pablos, Daniel Rajagopal, Krishna |
author_facet | Casalderrey-Solana, Jorge Gulhan, Doga Can Milhano, José Guilherme Pablos, Daniel Rajagopal, Krishna |
author_sort | Casalderrey-Solana, Jorge |
collection | CERN |
description | We propose and explore a new hybrid approach to jet quenching in a strongly coupled medium. The basis of this phenomenological approach is to treat physics processes at different energy scales differently. The high-$Q^2$ processes associated with the QCD evolution of the jet from production as a single hard parton through its fragmentation, up to but not including hadronization, are treated perturbatively. The interactions between the partons in the shower and the deconfined matter within which they find themselves lead to energy loss. The momentum scales associated with the medium (of the order of the temperature) and with typical interactions between partons in the shower and the medium are sufficiently soft that strongly coupled physics plays an important role in energy loss. We model these interactions using qualitative insights from holographic calculations of the energy loss of energetic light quarks and gluons in a strongly coupled plasma, obtained via gauge/gravity duality. We embed this hybrid model into a hydrodynamic description of the spacetime evolution of the hot QCD matter produced in heavy ion collisions and confront its predictions with jet data from the LHC. The holographic expression for the energy loss of a light quark or gluon that we incorporate in our hybrid model is parametrized by a stopping distance. We find very good agreement with all the data as long as we choose a stopping distance that is comparable to but somewhat longer than that in ${\cal N}=4$ supersymmetric Yang-Mills theory. For comparison, we also construct alternative models in which energy loss occurs as it would if the plasma were weakly coupled. We close with suggestions of observables that could provide more incisive evidence for, or against, the importance of strongly coupled physics in jet quenching. |
id | cern-1701351 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2014 |
record_format | invenio |
spelling | cern-17013512022-08-10T20:20:53Zdoi:10.1007/JHEP09(2015)175doi:10.1007/JHEP10(2014)019doi:10.1007/JHEP09(2015)175http://cds.cern.ch/record/1701351engCasalderrey-Solana, JorgeGulhan, Doga CanMilhano, José GuilhermePablos, DanielRajagopal, KrishnaA Hybrid Strong/Weak Coupling Approach to Jet QuenchingParticle Physics - PhenomenologyWe propose and explore a new hybrid approach to jet quenching in a strongly coupled medium. The basis of this phenomenological approach is to treat physics processes at different energy scales differently. The high-$Q^2$ processes associated with the QCD evolution of the jet from production as a single hard parton through its fragmentation, up to but not including hadronization, are treated perturbatively. The interactions between the partons in the shower and the deconfined matter within which they find themselves lead to energy loss. The momentum scales associated with the medium (of the order of the temperature) and with typical interactions between partons in the shower and the medium are sufficiently soft that strongly coupled physics plays an important role in energy loss. We model these interactions using qualitative insights from holographic calculations of the energy loss of energetic light quarks and gluons in a strongly coupled plasma, obtained via gauge/gravity duality. We embed this hybrid model into a hydrodynamic description of the spacetime evolution of the hot QCD matter produced in heavy ion collisions and confront its predictions with jet data from the LHC. The holographic expression for the energy loss of a light quark or gluon that we incorporate in our hybrid model is parametrized by a stopping distance. We find very good agreement with all the data as long as we choose a stopping distance that is comparable to but somewhat longer than that in ${\cal N}=4$ supersymmetric Yang-Mills theory. For comparison, we also construct alternative models in which energy loss occurs as it would if the plasma were weakly coupled. We close with suggestions of observables that could provide more incisive evidence for, or against, the importance of strongly coupled physics in jet quenching.We propose and explore a new hybrid approach to jet quenching in a strongly coupled medium. The basis of this phenomenological approach is to treat physics processes at different energy scales differently. The high-Q$^{2}$ processes associated with the QCD evolution of the jet from its production as a single hard parton through its fragmentation, up to but not including hadronization, are treated perturbatively following DGLAP evolution, to which we ascribe a spacetime structure. The interactions between the partons in the shower and the deconfined matter within which they find themselves lead to energy loss. The momentum scales associated with the medium itself (of the order of the temperature) and with typical interactions between partons in the shower and the medium are sufficiently soft that strongly coupled physics plays an important role in energy loss. We model these interactions using qualitative insights inferred from holographic calculations of the energy loss of energetic light quarks and gluons in a strongly coupled plasma, obtained via gauge/gravity duality. We embed this hybrid model into a hydrodynamic description of the spacetime evolution of the hot QCD matter produced in heavy ion collisions and confront its predictions with experimental results for a number of observables that have been measured in high energy jet data from heavy ion collisions at the LHC, including jet R$_{AA}$ as a function of transverse momentum, the dijet asymmetry, and the jet fragmentation function ratio, all as functions of collision centrality. The holographic expression for the energy loss of a light quark or gluon that we incorporate in our hybrid model is parametrized by a stopping distance. We find very good agreement with all the data as long as we choose a stopping distance that is comparable to but somewhat longer than that in $ \mathcal{N}=4 $ supersymmetric Yang-Mills theory. For comparison, we also construct analogous alternative models in which we assume that energy loss occurs as it would if the plasma were weakly coupled. We close with suggestions of observables that could provide more incisive evidence for, or against, the importance of strongly coupled physics in jet quenching.We propose and explore a new hybrid approach to jet quenching in a strongly coupled medium. The basis of this phenomenological approach is to treat physics processes at different energy scales differently. The high-$Q^2$ processes associated with the QCD evolution of the jet from production as a single hard parton through its fragmentation, up to but not including hadronization, are treated perturbatively. The interactions between the partons in the shower and the deconfined matter within which they find themselves lead to energy loss. The momentum scales associated with the medium (of the order of the temperature) and with typical interactions between partons in the shower and the medium are sufficiently soft that strongly coupled physics plays an important role in energy loss. We model these interactions using qualitative insights from holographic calculations of the energy loss of energetic light quarks and gluons in a strongly coupled plasma, obtained via gauge/gravity duality. We embed this hybrid model into a hydrodynamic description of the spacetime evolution of the hot QCD matter produced in heavy ion collisions and confront its predictions with jet data from the LHC. The holographic expression for the energy loss of a light quark or gluon that we incorporate in our hybrid model is parametrized by a stopping distance. We find very good agreement with all the data as long as we choose a stopping distance that is comparable to but somewhat longer than that in ${\cal N}=4$ supersymmetric Yang-Mills theory. For comparison, we also construct alternative models in which energy loss occurs as it would if the plasma were weakly coupled. We close with suggestions of observables that could provide more incisive evidence for, or against, the importance of strongly coupled physics in jet quenching.arXiv:1405.3864MIT-CTP-4550CERN-PH-TH-2014-089ICCUB-14-051MIT-CTP-4550CERN-PH-TH-2014-089ICCUB-14-051oai:cds.cern.ch:17013512014-05-15 |
spellingShingle | Particle Physics - Phenomenology Casalderrey-Solana, Jorge Gulhan, Doga Can Milhano, José Guilherme Pablos, Daniel Rajagopal, Krishna A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title | A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title_full | A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title_fullStr | A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title_full_unstemmed | A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title_short | A Hybrid Strong/Weak Coupling Approach to Jet Quenching |
title_sort | hybrid strong/weak coupling approach to jet quenching |
topic | Particle Physics - Phenomenology |
url | https://dx.doi.org/10.1007/JHEP09(2015)175 https://dx.doi.org/10.1007/JHEP10(2014)019 https://dx.doi.org/10.1007/JHEP09(2015)175 http://cds.cern.ch/record/1701351 |
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