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Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure

In this work we consider a coupled system of Schwinger-Dyson equations for self-energy and vertex functions in QED_3. Using the concept of a semi-amputated vertex function, we manage to decouple the vertex equation and transform it in the infrared into a non-linear differential equation of Emden-Fow...

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Detalles Bibliográficos
Autores principales: Mavromatos, N.E., Papavassiliou, J.
Lenguaje:eng
Publicado: 1999
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.60.125008
http://cds.cern.ch/record/384194
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author Mavromatos, N.E.
Papavassiliou, J.
author_facet Mavromatos, N.E.
Papavassiliou, J.
author_sort Mavromatos, N.E.
collection CERN
description In this work we consider a coupled system of Schwinger-Dyson equations for self-energy and vertex functions in QED_3. Using the concept of a semi-amputated vertex function, we manage to decouple the vertex equation and transform it in the infrared into a non-linear differential equation of Emden-Fowler type. Its solution suggests the following picture: in the absence of infrared cut-offs there is only a trivial infrared fixed-point structure in the theory. However, the presence of masses, for either fermions or photons, changes the situation drastically, leading to a mass-dependent non-trivial infrared fixed point. In this picture a dynamical mass for the fermions is found to be generated consistently. The non-linearity of the equations gives rise to highly non-trivial constraints among the mass and effective (`running') gauge coupling, which impose lower and upper bounds on the latter for dynamical mass generation to occur. Possible implications of this to the theory of high-temperature superconductivity are briefly discussed.
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spelling cern-3841942023-03-14T19:55:04Zdoi:10.1103/PhysRevD.60.125008http://cds.cern.ch/record/384194engMavromatos, N.E.Papavassiliou, J.Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared StructureParticle Physics - TheoryIn this work we consider a coupled system of Schwinger-Dyson equations for self-energy and vertex functions in QED_3. Using the concept of a semi-amputated vertex function, we manage to decouple the vertex equation and transform it in the infrared into a non-linear differential equation of Emden-Fowler type. Its solution suggests the following picture: in the absence of infrared cut-offs there is only a trivial infrared fixed-point structure in the theory. However, the presence of masses, for either fermions or photons, changes the situation drastically, leading to a mass-dependent non-trivial infrared fixed point. In this picture a dynamical mass for the fermions is found to be generated consistently. The non-linearity of the equations gives rise to highly non-trivial constraints among the mass and effective (`running') gauge coupling, which impose lower and upper bounds on the latter for dynamical mass generation to occur. Possible implications of this to the theory of high-temperature superconductivity are briefly discussed.In this work we consider a coupled system of Schwinger-Dyson equations for self-energy and vertex functions in QED_3. Using the concept of a semi-amputated vertex function, we manage to decouple the vertex equation and transform it in the infrared into a non-linear differential equation of Emden-Fowler type. Its solution suggests the following picture: in the absence of infrared cut-offs there is only a trivial infrared fixed-point structure in the theory. However, the presence of masses, for either fermions or photons, changes the situation drastically, leading to a mass-dependent non-trivial infrared fixed point. In this picture a dynamical mass for the fermions is found to be generated consistently. The non-linearity of the equations gives rise to highly non-trivial constraints among the mass and effective (`running') gauge coupling, which impose lower and upper bounds on the latter for dynamical mass generation to occur. Possible implications of this to the theory of high-temperature superconductivity are briefly discussed.hep-th/9904046CERN-TH-99-94CERN-TH-99-094oai:cds.cern.ch:3841941999-04-08
spellingShingle Particle Physics - Theory
Mavromatos, N.E.
Papavassiliou, J.
Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title_full Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title_fullStr Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title_full_unstemmed Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title_short Non-linear Dynamics in $QED_{3}$ and Non-trivial Infrared Structure
title_sort non-linear dynamics in $qed_{3}$ and non-trivial infrared structure
topic Particle Physics - Theory
url https://dx.doi.org/10.1103/PhysRevD.60.125008
http://cds.cern.ch/record/384194
work_keys_str_mv AT mavromatosne nonlineardynamicsinqed3andnontrivialinfraredstructure
AT papavassiliouj nonlineardynamicsinqed3andnontrivialinfraredstructure