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Goldstone Equivalence and High Energy Electroweak Physics

The transition between the broken and unbroken phases of massive gauge theories, namely the rearrangement of longitudinal and Goldstone degrees of freedom that occurs at high energy, is not manifestly smooth in the standard formalism. The lack of smoothness concretely shows up as an anomalous growth...

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Detalles Bibliográficos
Autores principales: Cuomo, Gabriel, Vecchi, Luca, Wulzer, Andrea
Lenguaje:eng
Publicado: 2019
Materias:
Acceso en línea:https://dx.doi.org/10.21468/SciPostPhys.8.5.078
http://cds.cern.ch/record/2704555
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author Cuomo, Gabriel
Vecchi, Luca
Wulzer, Andrea
author_facet Cuomo, Gabriel
Vecchi, Luca
Wulzer, Andrea
author_sort Cuomo, Gabriel
collection CERN
description The transition between the broken and unbroken phases of massive gauge theories, namely the rearrangement of longitudinal and Goldstone degrees of freedom that occurs at high energy, is not manifestly smooth in the standard formalism. The lack of smoothness concretely shows up as an anomalous growth with energy of the longitudinal polarization vectors, as they emerge in Feynman rules both for real on-shell external particles and for virtual particles from the decomposition of the gauge field propagator. This makes the characterization of Feynman amplitudes in the high-energy limit quite cumbersome, which in turn poses peculiar challenges in the study of Electroweak processes at energies much above the Electroweak scale. We develop a Lorentz-covariant formalism where polarization vectors are well-behaved and, consequently, energy power-counting is manifest at the level of individual Feynman diagrams. This allows us to prove the validity of the Effective $W$ Approximation and, more generally, the factorization of collinear emissions and to compute the corresponding splitting functions at the tree-level order. Our formalism applies at all orders in perturbation theory, for arbitrary gauge groups and generic linear gauge-fixing functionals. It can be used to simplify Standard Model loop calculations by performing the high-energy expansion directly on the Feynman diagrams. This is illustrated by computing the radiative corrections to the decay of the top quark.
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spelling cern-27045552023-08-19T02:35:32Zdoi:10.21468/SciPostPhys.8.5.078http://cds.cern.ch/record/2704555engCuomo, GabrielVecchi, LucaWulzer, AndreaGoldstone Equivalence and High Energy Electroweak Physicshep-thParticle Physics - Theoryhep-phParticle Physics - PhenomenologyThe transition between the broken and unbroken phases of massive gauge theories, namely the rearrangement of longitudinal and Goldstone degrees of freedom that occurs at high energy, is not manifestly smooth in the standard formalism. The lack of smoothness concretely shows up as an anomalous growth with energy of the longitudinal polarization vectors, as they emerge in Feynman rules both for real on-shell external particles and for virtual particles from the decomposition of the gauge field propagator. This makes the characterization of Feynman amplitudes in the high-energy limit quite cumbersome, which in turn poses peculiar challenges in the study of Electroweak processes at energies much above the Electroweak scale. We develop a Lorentz-covariant formalism where polarization vectors are well-behaved and, consequently, energy power-counting is manifest at the level of individual Feynman diagrams. This allows us to prove the validity of the Effective $W$ Approximation and, more generally, the factorization of collinear emissions and to compute the corresponding splitting functions at the tree-level order. Our formalism applies at all orders in perturbation theory, for arbitrary gauge groups and generic linear gauge-fixing functionals. It can be used to simplify Standard Model loop calculations by performing the high-energy expansion directly on the Feynman diagrams. This is illustrated by computing the radiative corrections to the decay of the top quark.The transition between the broken and unbroken phases of massive gauge theories, namely the rearrangement of longitudinal and Goldstone degrees of freedom that occurs at high energy, is not manifestly smooth in the standard formalism. The lack of smoothness concretely shows up as an anomalous growth with energy of the longitudinal polarization vectors, as they emerge in Feynman rules both for real on-shell external particles and for virtual particles from the decomposition of the gauge field propagator. This makes the characterization of Feynman amplitudes in the high-energy limit quite cumbersome, which in turn poses peculiar challenges in the study of Electroweak processes at energies much above the Electroweak scale. We develop a Lorentz-covariant formalism where polarization vectors are well-behaved and, consequently, energy power-counting is manifest at the level of individual Feynman diagrams. This allows us to prove the validity of the Effective W Approximation and, more generally, the factorization of collinear emissions and to compute the corresponding splitting functions at the tree-level order. Our formalism applies at all orders in perturbation theory, for arbitrary gauge groups and generic linear gauge-fixing functionals. It can be used to simplify Standard Model loop calculations by performing the high-energy expansion directly on the Feynman diagrams. This is illustrated by computing the radiative corrections to the decay of the top quark.arXiv:1911.12366CERN-TH-2019-197oai:cds.cern.ch:27045552019-11-27
spellingShingle hep-th
Particle Physics - Theory
hep-ph
Particle Physics - Phenomenology
Cuomo, Gabriel
Vecchi, Luca
Wulzer, Andrea
Goldstone Equivalence and High Energy Electroweak Physics
title Goldstone Equivalence and High Energy Electroweak Physics
title_full Goldstone Equivalence and High Energy Electroweak Physics
title_fullStr Goldstone Equivalence and High Energy Electroweak Physics
title_full_unstemmed Goldstone Equivalence and High Energy Electroweak Physics
title_short Goldstone Equivalence and High Energy Electroweak Physics
title_sort goldstone equivalence and high energy electroweak physics
topic hep-th
Particle Physics - Theory
hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.21468/SciPostPhys.8.5.078
http://cds.cern.ch/record/2704555
work_keys_str_mv AT cuomogabriel goldstoneequivalenceandhighenergyelectroweakphysics
AT vecchiluca goldstoneequivalenceandhighenergyelectroweakphysics
AT wulzerandrea goldstoneequivalenceandhighenergyelectroweakphysics