Gauge invariant determination of charged hadron masses

Abstract In this paper we show, for the first time, that charged-hadron masses can be calculated on the lattice without relying on gauge fixing at any stage of the calculations. In our simulations we follow a recent proposal and formulate full QCD+QED on a finite volume, without spoiling locality, b...

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Main Authors: M. Hansen, B. Lucini, A. Patella, N. Tantalo, for the RC⋆ collaboration
Format: Article
Language:English
Published: SpringerOpen 2018-05-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP05(2018)146
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spelling doaj-b6e0c55b993548fc89a24d995196d1462020-11-25T00:10:06ZengSpringerOpenJournal of High Energy Physics1029-84792018-05-012018511910.1007/JHEP05(2018)146Gauge invariant determination of charged hadron massesM. Hansen0B. Lucini1A. Patella2N. Tantalo3for the RC⋆ collaborationCP3-Origins, University of Southern DenmarkCollege of Science, Swansea UniversityCERN, Department of Theoretical PhysicsUniversity of Rome Tor Vergata and INFN Roma Tor VergataAbstract In this paper we show, for the first time, that charged-hadron masses can be calculated on the lattice without relying on gauge fixing at any stage of the calculations. In our simulations we follow a recent proposal and formulate full QCD+QED on a finite volume, without spoiling locality, by imposing C-periodic boundary conditions in the spatial directions. Electrically charged states are interpolated with a class of operators, originally suggested by Dirac and built as functionals of the photon field, that are invariant under local gauge transformations. We show that the quality of the numerical signal of charged-hadron masses is the same as in the neutral sector and that charged-neutral mass splittings can be calculated with satisfactory accuracy in this setup. We also discuss how to describe states of charged hadrons with real photons in a fully gauge-invariant way by providing a first evidence that the proposed strategy can be numerically viable.http://link.springer.com/article/10.1007/JHEP05(2018)146Lattice Quantum Field TheoryNonperturbative Effects
collection DOAJ
language English
format Article
sources DOAJ
author M. Hansen
B. Lucini
A. Patella
N. Tantalo
for the RC⋆ collaboration
spellingShingle M. Hansen
B. Lucini
A. Patella
N. Tantalo
for the RC⋆ collaboration
Gauge invariant determination of charged hadron masses
Journal of High Energy Physics
Lattice Quantum Field Theory
Nonperturbative Effects
author_facet M. Hansen
B. Lucini
A. Patella
N. Tantalo
for the RC⋆ collaboration
author_sort M. Hansen
title Gauge invariant determination of charged hadron masses
title_short Gauge invariant determination of charged hadron masses
title_full Gauge invariant determination of charged hadron masses
title_fullStr Gauge invariant determination of charged hadron masses
title_full_unstemmed Gauge invariant determination of charged hadron masses
title_sort gauge invariant determination of charged hadron masses
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2018-05-01
description Abstract In this paper we show, for the first time, that charged-hadron masses can be calculated on the lattice without relying on gauge fixing at any stage of the calculations. In our simulations we follow a recent proposal and formulate full QCD+QED on a finite volume, without spoiling locality, by imposing C-periodic boundary conditions in the spatial directions. Electrically charged states are interpolated with a class of operators, originally suggested by Dirac and built as functionals of the photon field, that are invariant under local gauge transformations. We show that the quality of the numerical signal of charged-hadron masses is the same as in the neutral sector and that charged-neutral mass splittings can be calculated with satisfactory accuracy in this setup. We also discuss how to describe states of charged hadrons with real photons in a fully gauge-invariant way by providing a first evidence that the proposed strategy can be numerically viable.
topic Lattice Quantum Field Theory
Nonperturbative Effects
url http://link.springer.com/article/10.1007/JHEP05(2018)146
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AT blucini gaugeinvariantdeterminationofchargedhadronmasses
AT apatella gaugeinvariantdeterminationofchargedhadronmasses
AT ntantalo gaugeinvariantdeterminationofchargedhadronmasses
AT fortherccollaboration gaugeinvariantdeterminationofchargedhadronmasses
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