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The phase diagram of Yang-Mills theory with a compact extra dimension

We present a non-perturbative study of the phase diagram of SU(2) Yang-Mills theory in a five-dimensional spacetime with a compact extra dimension. The non-renormalizable theory is regularized on an anisotropic lattice and investigated through numerical simulations in a regime characterized by a hie...

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Detalles Bibliográficos
Autores principales: de Forcrand, Philippe, Kurkela, Aleksi, Panero, Marco
Lenguaje:eng
Publicado: 2010
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP06(2010)050
http://cds.cern.ch/record/1255282
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author de Forcrand, Philippe
Kurkela, Aleksi
Panero, Marco
author_facet de Forcrand, Philippe
Kurkela, Aleksi
Panero, Marco
author_sort de Forcrand, Philippe
collection CERN
description We present a non-perturbative study of the phase diagram of SU(2) Yang-Mills theory in a five-dimensional spacetime with a compact extra dimension. The non-renormalizable theory is regularized on an anisotropic lattice and investigated through numerical simulations in a regime characterized by a hierarchy between the scale of low-energy physics, the inverse compactification radius, and the cutoff scale. We map out the structure of the phase diagram and the pattern of lines corresponding to fixed values of the ratio between the mass of the fifth component of the gauge field and the non-perturbative mass gap of the four-dimensional modes. We discuss different limits of the model, and comment on the implications of our findings.
id cern-1255282
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2010
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spelling cern-12552822023-03-14T19:09:52Zdoi:10.1007/JHEP06(2010)050http://cds.cern.ch/record/1255282engde Forcrand, PhilippeKurkela, AleksiPanero, MarcoThe phase diagram of Yang-Mills theory with a compact extra dimensionParticle Physics - LatticeWe present a non-perturbative study of the phase diagram of SU(2) Yang-Mills theory in a five-dimensional spacetime with a compact extra dimension. The non-renormalizable theory is regularized on an anisotropic lattice and investigated through numerical simulations in a regime characterized by a hierarchy between the scale of low-energy physics, the inverse compactification radius, and the cutoff scale. We map out the structure of the phase diagram and the pattern of lines corresponding to fixed values of the ratio between the mass of the fifth component of the gauge field and the non-perturbative mass gap of the four-dimensional modes. We discuss different limits of the model, and comment on the implications of our findings.We present a non-perturbative study of the phase diagram of SU(2) Yang-Mills theory in a five-dimensional spacetime with a compact extra dimension. The non-renormalizable theory is regularized on an anisotropic lattice and investigated through numerical simulations in a regime characterized by a hierarchy between the scale of low-energy physics, the inverse compactification radius, and the cutoff scale. We map out the structure of the phase diagram and the pattern of lines corresponding to fixed values of the ratio between the mass of the fifth component of the gauge field and the non-perturbative mass gap of the four-dimensional modes. We discuss different limits of the model, and comment on the implications of our findings.arXiv:1003.4643CERN-PH-TH-2009-191CERN-PH-TH-2009-191oai:cds.cern.ch:12552822010-03-25
spellingShingle Particle Physics - Lattice
de Forcrand, Philippe
Kurkela, Aleksi
Panero, Marco
The phase diagram of Yang-Mills theory with a compact extra dimension
title The phase diagram of Yang-Mills theory with a compact extra dimension
title_full The phase diagram of Yang-Mills theory with a compact extra dimension
title_fullStr The phase diagram of Yang-Mills theory with a compact extra dimension
title_full_unstemmed The phase diagram of Yang-Mills theory with a compact extra dimension
title_short The phase diagram of Yang-Mills theory with a compact extra dimension
title_sort phase diagram of yang-mills theory with a compact extra dimension
topic Particle Physics - Lattice
url https://dx.doi.org/10.1007/JHEP06(2010)050
http://cds.cern.ch/record/1255282
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