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Pion Electromagnetic Form Factor from Bethe-Salpeter Amplitudes with Appropriate Kinematics

High Energy Physics - Phenomenology 2024-02-27 v2 Nuclear Theory

Abstract

Within the framework provided by quantum chromodynamics's Schwinger-Dyson equations (SDEs), the pion's electromagnetic form factor is computed using solutions of the Bethe-Salpeter equation (BSE) that have finite spacial momentum, and therefore allow the appropriate kinematics for a given momentum transfer. This removes, for the first time, a limiting approximation in previous SDE calculations where rest-frame solutions to the BSE are used for both the initial and final pion states. In performing these calculations, the rainbow-ladder truncation to the SDEs in the Landau gauge is used, with the quark-gluon interaction given by the Maris-Tandy model. Using Bethe-Salpeter amplitudes (BSAs) that have the correct spacial momentum for a given momentum transfer, Q2Q^2, has a dramatic impact on results for the pion's electromagnetic form factor. The difference between results that use rest-frame BSAs and those with correct kinematics is less that 10\% for 0Q210 \leqslant Q^2 \lesssim 1\,GeV2^2, however, these corrections grow with increasing momentum transfer and approach 100\% for Q23Q^2 \simeq 3\,GeV2^2.

Keywords

Cite

@article{arxiv.2402.00285,
  title  = {Pion Electromagnetic Form Factor from Bethe-Salpeter Amplitudes with Appropriate Kinematics},
  author = {Shaoyang Jia and Ian Cloët},
  journal= {arXiv preprint arXiv:2402.00285},
  year   = {2024}
}
R2 v1 2026-06-28T14:34:00.063Z