Gauge fields as constrained composite bosons

We reconsider a scenario in which photons and other gauge fields appear as the composite vector bosons made of the fermion pairs that may happen with or without spontaneous violation of Lorentz invariance. The class of composite models for emergent gauge fields is proposed, where these fields are re...

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Main Author: J.L. Chkareuli
Format: Article
Language:English
Published: Elsevier 2021-06-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269321002215
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spelling doaj-07e339d27b4a43b0868eefa2aee1f1532021-05-28T04:59:33ZengElsevierPhysics Letters B0370-26932021-06-01817136281Gauge fields as constrained composite bosonsJ.L. Chkareuli0Institute of Theoretical Physics, Ilia State University, 0162 Tbilisi, Georgia; Andronikashvili Institute of Physics, Tbilisi State University, 0177 Tbilisi, Georgia; Correspondence to: Andronikashvili Institute of Physics, Tbilisi State University, 0177 Tbilisi, Georgia.We reconsider a scenario in which photons and other gauge fields appear as the composite vector bosons made of the fermion pairs that may happen with or without spontaneous violation of Lorentz invariance. The class of composite models for emergent gauge fields is proposed, where these fields are required to be restricted by the nonlinear covariant constraint of type AμAμ=M2. Such a constraint may only appear if the corresponding fermion currents in the prototype model, being invariant under some global internal symmetry G, are properly constrained as well. In contrast to the conventional approach, the composite bosons emerged in this way appear naturally massless, the global symmetry G in the model turns into the local symmetry Gloc, while the vector field constraint reveals itself as the gauge fixing condition. Finally, we consider the case when the constituent fermions generating emergent gauge bosons could be at the same time the preons composing the known quark-lepton species in the Standard Model and Grand Unified Theories.http://www.sciencedirect.com/science/article/pii/S0370269321002215
collection DOAJ
language English
format Article
sources DOAJ
author J.L. Chkareuli
spellingShingle J.L. Chkareuli
Gauge fields as constrained composite bosons
Physics Letters B
author_facet J.L. Chkareuli
author_sort J.L. Chkareuli
title Gauge fields as constrained composite bosons
title_short Gauge fields as constrained composite bosons
title_full Gauge fields as constrained composite bosons
title_fullStr Gauge fields as constrained composite bosons
title_full_unstemmed Gauge fields as constrained composite bosons
title_sort gauge fields as constrained composite bosons
publisher Elsevier
series Physics Letters B
issn 0370-2693
publishDate 2021-06-01
description We reconsider a scenario in which photons and other gauge fields appear as the composite vector bosons made of the fermion pairs that may happen with or without spontaneous violation of Lorentz invariance. The class of composite models for emergent gauge fields is proposed, where these fields are required to be restricted by the nonlinear covariant constraint of type AμAμ=M2. Such a constraint may only appear if the corresponding fermion currents in the prototype model, being invariant under some global internal symmetry G, are properly constrained as well. In contrast to the conventional approach, the composite bosons emerged in this way appear naturally massless, the global symmetry G in the model turns into the local symmetry Gloc, while the vector field constraint reveals itself as the gauge fixing condition. Finally, we consider the case when the constituent fermions generating emergent gauge bosons could be at the same time the preons composing the known quark-lepton species in the Standard Model and Grand Unified Theories.
url http://www.sciencedirect.com/science/article/pii/S0370269321002215
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