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Electromagnetic meson form factor from a relativistic coupled-channel approach

Point-form relativistic quantum mechanics is used to derive an expression for the electromagnetic form factor of a pseudoscalar meson for space-like momentum transfers. The elastic scattering of an electron by a confined quark-antiquark pair is treated as a relativistic two-channel problem for the $...

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Autores principales: Biernat, Elmar P., Schweiger, Wolfgang, Fuchsberger, Kajetan, Klink, William H.
Lenguaje:eng
Publicado: 2009
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevC.79.055203
http://cds.cern.ch/record/1161698
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author Biernat, Elmar P.
Schweiger, Wolfgang
Fuchsberger, Kajetan
Klink, William H.
author_facet Biernat, Elmar P.
Schweiger, Wolfgang
Fuchsberger, Kajetan
Klink, William H.
author_sort Biernat, Elmar P.
collection CERN
description Point-form relativistic quantum mechanics is used to derive an expression for the electromagnetic form factor of a pseudoscalar meson for space-like momentum transfers. The elastic scattering of an electron by a confined quark-antiquark pair is treated as a relativistic two-channel problem for the $q\bar{q}e$ and $q\bar{q}e\gamma$ states. With the approximation that the total velocity of the $q\bar{q}e$ system is conserved at (electromagnetic) interaction vertices this simplifies to an eigenvalue problem for a Bakamjian-Thomas type mass operator. After elimination of the $q\bar{q}e\gamma$ channel the electromagnetic meson current and form factor can be directly read off from the one-photon-exchange optical potential. By choosing the invariant mass of the electron-meson system large enough, cluster separability violations become negligible. An equivalence with the usual front-form expression, resulting from a spectator current in the $q^+=0$ reference frame, is established. The generalization of this multichannel approach to electroweak form factors for an arbitrary bound few-body system is quite obvious. By an appropriate extension of the Hilbert space this approach is also able to accommodate exchange-current effects.
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spelling cern-11616982021-07-15T01:20:41Zdoi:10.1103/PhysRevC.79.055203http://cds.cern.ch/record/1161698engBiernat, Elmar P.Schweiger, WolfgangFuchsberger, KajetanKlink, William H.Electromagnetic meson form factor from a relativistic coupled-channel approachNuclear Physics - TheoryPoint-form relativistic quantum mechanics is used to derive an expression for the electromagnetic form factor of a pseudoscalar meson for space-like momentum transfers. The elastic scattering of an electron by a confined quark-antiquark pair is treated as a relativistic two-channel problem for the $q\bar{q}e$ and $q\bar{q}e\gamma$ states. With the approximation that the total velocity of the $q\bar{q}e$ system is conserved at (electromagnetic) interaction vertices this simplifies to an eigenvalue problem for a Bakamjian-Thomas type mass operator. After elimination of the $q\bar{q}e\gamma$ channel the electromagnetic meson current and form factor can be directly read off from the one-photon-exchange optical potential. By choosing the invariant mass of the electron-meson system large enough, cluster separability violations become negligible. An equivalence with the usual front-form expression, resulting from a spectator current in the $q^+=0$ reference frame, is established. The generalization of this multichannel approach to electroweak form factors for an arbitrary bound few-body system is quite obvious. By an appropriate extension of the Hilbert space this approach is also able to accommodate exchange-current effects.Point-form relativistic quantum mechanics is used to derive an expression for the electromagnetic form factor of a pseudoscalar meson for space-like momentum transfers. The elastic scattering of an electron by a confined quark-antiquark pair is treated as a relativistic two-channel problem for the $q\bar{q}e$ and $q\bar{q}e\gamma$ states. With the approximation that the total velocity of the $q\bar{q}e$ system is conserved at (electromagnetic) interaction vertices this simplifies to an eigenvalue problem for a Bakamjian-Thomas type mass operator. After elimination of the $q\bar{q}e\gamma$ channel the electromagnetic meson current and form factor can be directly read off from the one-photon-exchange optical potential. By choosing the invariant mass of the electron-meson system large enough, cluster separability violations become negligible. An equivalence with the usual front-form expression, resulting from a spectator current in the $q^+=0$ reference frame, is established. The generalization of this multichannel approach to electroweak form factors for an arbitrary bound few-body system is quite obvious. By an appropriate extension of the Hilbert space this approach is also able to accommodate exchange-current effects.arXiv:0902.2348oai:cds.cern.ch:11616982009-02-16
spellingShingle Nuclear Physics - Theory
Biernat, Elmar P.
Schweiger, Wolfgang
Fuchsberger, Kajetan
Klink, William H.
Electromagnetic meson form factor from a relativistic coupled-channel approach
title Electromagnetic meson form factor from a relativistic coupled-channel approach
title_full Electromagnetic meson form factor from a relativistic coupled-channel approach
title_fullStr Electromagnetic meson form factor from a relativistic coupled-channel approach
title_full_unstemmed Electromagnetic meson form factor from a relativistic coupled-channel approach
title_short Electromagnetic meson form factor from a relativistic coupled-channel approach
title_sort electromagnetic meson form factor from a relativistic coupled-channel approach
topic Nuclear Physics - Theory
url https://dx.doi.org/10.1103/PhysRevC.79.055203
http://cds.cern.ch/record/1161698
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AT klinkwilliamh electromagneticmesonformfactorfromarelativisticcoupledchannelapproach