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Constrained Gauge Fields from Spontaneous Lorentz Violation

Spontaneous Lorentz violation realized through a nonlinear vector field constraint of the type $A_{\mu}^{2}=M^{2}$ ($M$ is the proposed scale for Lorentz violation) is shown to generate massless vector Goldstone bosons, gauging the starting global internal symmetries in arbitrary relativistically in...

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Autores principales: Chkareuli, J.L., Froggatt, C.D., Jejelava, J.G., Nielsen, H.B.
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.nuclphysb.2007.12.006
http://cds.cern.ch/record/1063743
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author Chkareuli, J.L.
Froggatt, C.D.
Jejelava, J.G.
Nielsen, H.B.
author_facet Chkareuli, J.L.
Froggatt, C.D.
Jejelava, J.G.
Nielsen, H.B.
author_sort Chkareuli, J.L.
collection CERN
description Spontaneous Lorentz violation realized through a nonlinear vector field constraint of the type $A_{\mu}^{2}=M^{2}$ ($M$ is the proposed scale for Lorentz violation) is shown to generate massless vector Goldstone bosons, gauging the starting global internal symmetries in arbitrary relativistically invariant theories. The gauge invariance appears in essence as a necessary condition for these bosons not to be superfluously restricted in degrees of freedom, apart from the constraint due to which the true vacuum in a theory is chosen by the Lorentz violation. In the Abelian symmetry case the only possible theory proves to be QED with a massless vector Goldstone boson naturally associated with the photon, while the non-Abelian symmetry case results in a conventional Yang-Mills theory. These theories, both Abelian and non-Abelian, look essentially nonlinear and contain particular Lorentz (and $CPT$) violating couplings when expressed in terms of the pure Goldstone vector modes. However, they do not lead to physical Lorentz violation due to the simultaneously generated gauge invariance.
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institution Organización Europea para la Investigación Nuclear
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publishDate 2007
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spelling cern-10637432021-07-16T18:14:45Zdoi:10.1016/j.nuclphysb.2007.12.006http://cds.cern.ch/record/1063743engChkareuli, J.L.Froggatt, C.D.Jejelava, J.G.Nielsen, H.B.Constrained Gauge Fields from Spontaneous Lorentz ViolationParticle Physics - TheorySpontaneous Lorentz violation realized through a nonlinear vector field constraint of the type $A_{\mu}^{2}=M^{2}$ ($M$ is the proposed scale for Lorentz violation) is shown to generate massless vector Goldstone bosons, gauging the starting global internal symmetries in arbitrary relativistically invariant theories. The gauge invariance appears in essence as a necessary condition for these bosons not to be superfluously restricted in degrees of freedom, apart from the constraint due to which the true vacuum in a theory is chosen by the Lorentz violation. In the Abelian symmetry case the only possible theory proves to be QED with a massless vector Goldstone boson naturally associated with the photon, while the non-Abelian symmetry case results in a conventional Yang-Mills theory. These theories, both Abelian and non-Abelian, look essentially nonlinear and contain particular Lorentz (and $CPT$) violating couplings when expressed in terms of the pure Goldstone vector modes. However, they do not lead to physical Lorentz violation due to the simultaneously generated gauge invariance.Spontaneous Lorentz violation realized through a nonlinear vector field constraint of the type A μ A μ = M 2 ( M is the proposed scale for Lorentz violation) is shown to generate massless vector Goldstone bosons, gauging the starting global internal symmetries in arbitrary relativistically invariant theories. The gauge invariance appears in essence as a necessary condition for these bosons not to be superfluously restricted in degrees of freedom, apart from the constraint due to which the true vacuum in a theory is chosen by the Lorentz violation. In the Abelian symmetry case the only possible theory proves to be QED with a massless vector Goldstone boson naturally associated with the photon, while the non-Abelian symmetry case results in a conventional Yang–Mills theory. These theories, both Abelian and non-Abelian, look essentially nonlinear and contain particular Lorentz (and CPT ) violating couplings when expressed in terms of the pure Goldstone vector modes. However, they do not lead to physical Lorentz violation due to the simultaneously generated gauge invariance.Spontaneous Lorentz violation realized through a nonlinear vector field constraint of the type $A_{\mu}A^{\mu}=M^{2}$ ($M$ is the proposed scale for Lorentz violation) is shown to generate massless vector Goldstone bosons, gauging the starting global internal symmetries in arbitrary relativistically invariant theories. The gauge invariance appears in essence as a necessary condition for these bosons not to be superfluously restricted in degrees of freedom, apart from the constraint due to which the true vacuum in a theory is chosen by the Lorentz violation. In the Abelian symmetry case the only possible theory proves to be QED with a massless vector Goldstone boson naturally associated with the photon, while the non-Abelian symmetry case results in a conventional Yang-Mills theory. These theories, both Abelian and non-Abelian, look essentially nonlinear and contain particular Lorentz (and $CPT$) violating couplings when expressed in terms of the pure Goldstone vector modes. However, they do not lead to physical Lorentz violation due to the simultaneously generated gauge invariance.arXiv:0710.3479CERN-PH-TH-2007-188CERN-PH-TH-2007-188oai:cds.cern.ch:10637432007-10-19
spellingShingle Particle Physics - Theory
Chkareuli, J.L.
Froggatt, C.D.
Jejelava, J.G.
Nielsen, H.B.
Constrained Gauge Fields from Spontaneous Lorentz Violation
title Constrained Gauge Fields from Spontaneous Lorentz Violation
title_full Constrained Gauge Fields from Spontaneous Lorentz Violation
title_fullStr Constrained Gauge Fields from Spontaneous Lorentz Violation
title_full_unstemmed Constrained Gauge Fields from Spontaneous Lorentz Violation
title_short Constrained Gauge Fields from Spontaneous Lorentz Violation
title_sort constrained gauge fields from spontaneous lorentz violation
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/j.nuclphysb.2007.12.006
http://cds.cern.ch/record/1063743
work_keys_str_mv AT chkareulijl constrainedgaugefieldsfromspontaneouslorentzviolation
AT froggattcd constrainedgaugefieldsfromspontaneouslorentzviolation
AT jejelavajg constrainedgaugefieldsfromspontaneouslorentzviolation
AT nielsenhb constrainedgaugefieldsfromspontaneouslorentzviolation