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Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit

To study ``physical'' gauges such as the Coulomb, light-cone, axial or temporal gauge, we consider ``interpolating'' gauges which interpolate linearly between a covariant gauge, such as the Feynman or Landau gauge, and a physical gauge. Lorentz breaking by the gauge-fixing term o...

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Autores principales: Baulieu, Laurent, Zwanziger, Daniel
Lenguaje:eng
Publicado: 1998
Materias:
Acceso en línea:https://dx.doi.org/10.1016/S0550-3213(99)00074-7
http://cds.cern.ch/record/358904
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author Baulieu, Laurent
Zwanziger, Daniel
author_facet Baulieu, Laurent
Zwanziger, Daniel
author_sort Baulieu, Laurent
collection CERN
description To study ``physical'' gauges such as the Coulomb, light-cone, axial or temporal gauge, we consider ``interpolating'' gauges which interpolate linearly between a covariant gauge, such as the Feynman or Landau gauge, and a physical gauge. Lorentz breaking by the gauge-fixing term of interpolating gauges is controlled by extending the BRST method to include not only the local gauge group, but also the global Lorentz group. We enumerate the possible divergences of interpolating gauges, and show that they are renormalizable, and we show that the expectation value of physical observables is the same as in a covariant gauge. In the second part of the article we study the Coulomb-gauge as the singular limit of the Landau-Coulomb interpolating gauge. We find that unrenormalized and renormalized correlation functions are finite in this limit. We also find that there are finite two-loop diagrams of ``unphysical'' particles that are not present in formal canonical quantization in the Coulomb gauge. We verify that in the same limit, the Gauss-BRST Ward identity holds, which is the functional analog of the operator statement that a BRST transformation is generated by the Gauss-BRST charge. As a consequence, $gA_0$ is invariant under renormalization, whereas in a covariant gauge, no component of the gluon field has this property.
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institution Organización Europea para la Investigación Nuclear
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publishDate 1998
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spelling cern-3589042023-03-14T18:46:54Zdoi:10.1016/S0550-3213(99)00074-7http://cds.cern.ch/record/358904engBaulieu, LaurentZwanziger, DanielRenormalizable Non-Covariant Gauges and Coulomb Gauge LimitParticle Physics - TheoryTo study ``physical'' gauges such as the Coulomb, light-cone, axial or temporal gauge, we consider ``interpolating'' gauges which interpolate linearly between a covariant gauge, such as the Feynman or Landau gauge, and a physical gauge. Lorentz breaking by the gauge-fixing term of interpolating gauges is controlled by extending the BRST method to include not only the local gauge group, but also the global Lorentz group. We enumerate the possible divergences of interpolating gauges, and show that they are renormalizable, and we show that the expectation value of physical observables is the same as in a covariant gauge. In the second part of the article we study the Coulomb-gauge as the singular limit of the Landau-Coulomb interpolating gauge. We find that unrenormalized and renormalized correlation functions are finite in this limit. We also find that there are finite two-loop diagrams of ``unphysical'' particles that are not present in formal canonical quantization in the Coulomb gauge. We verify that in the same limit, the Gauss-BRST Ward identity holds, which is the functional analog of the operator statement that a BRST transformation is generated by the Gauss-BRST charge. As a consequence, $gA_0$ is invariant under renormalization, whereas in a covariant gauge, no component of the gluon field has this property.To study ``physical'' gauges such as the Coulomb, light-cone, axial or temporal gauge, we consider ``interpolating'' gauges which interpolate linearly between a covariant gauge, such as the Feynman or Landau gauge, and a physical gauge. Lorentz breaking by the gauge-fixing term of interpolating gauges is controlled by extending the BRST method to include not only the local gauge group, but also the global Lorentz group. We enumerate the possible divergences of interpolating gauges, and show that they are renormalizable, and we show that the expectation value of physical observables is the same as in a covariant gauge. In the second part of the article we study the Coulomb-gauge as the singular limit of the Landau-Coulomb interpolating gauge. We find that unrenormalized and renormalized correlation functions are finite in this limit. We also find that there are finite two-loop diagrams of ``unphysical'' particles that are not present in formal canonical quantization in the Coulomb gauge. We verify that in the same limit, the Gauss-BRST Ward identity holds, which is the functional analog of the operator statement that a BRST transformation is generated by the Gauss-BRST charge. As a consequence, $gA_0$ is invariant under renormalization, whereas in a covariant gauge, no component of the gluon field has this property.hep-th/9807024CERN-TH-98-94LPTHE-9818NYU-9809CERN-TH-98-094CERN-TH-98-094LPTHE-98-18NYU-98-9oai:cds.cern.ch:3589041998-07-03
spellingShingle Particle Physics - Theory
Baulieu, Laurent
Zwanziger, Daniel
Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title_full Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title_fullStr Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title_full_unstemmed Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title_short Renormalizable Non-Covariant Gauges and Coulomb Gauge Limit
title_sort renormalizable non-covariant gauges and coulomb gauge limit
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/S0550-3213(99)00074-7
http://cds.cern.ch/record/358904
work_keys_str_mv AT baulieulaurent renormalizablenoncovariantgaugesandcoulombgaugelimit
AT zwanzigerdaniel renormalizablenoncovariantgaugesandcoulombgaugelimit