4.4 Article

Nucleon axial structure from lattice QCD

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 5, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP05(2020)126

Keywords

Lattice QCD; Neutrino Physics; Nonperturbative Effects

Funding

  1. Deutsche Forschungsgemeinschaft (collaborative research centre) [SFB/TRR-55]
  2. European Union's Horizon 2020 Research and Innovation programme under the Marie Sklodowska-Curie grant [813942]
  3. STRONG-2020 project [824093]
  4. German BMBF [05P18WRFP1]
  5. German Federal Ministry of Education and Research (BMBF)
  6. German State Ministry for Research of Baden-Wurttemberg (MWK)
  7. German State Ministry for Research of Bayern (StMWFK)
  8. German State Ministry for Research of Nordrhein-Westfalen (MIWF)

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We present a new analysis method that allows one to understand and model excited state contributions in observables that are dominated by a pion pole. We apply this method to extract axial and (induced) pseudoscalar nucleon isovector form factors, which satisfy the constraints due to the partial conservation of the axial current up to expected discretization effects. Effective field theory predicts that the leading contribution to the (induced) pseudoscalar form factor originates from an exchange of a virtual pion, and thus exhibits pion pole dominance. Using our new method, we can recover this behavior directly from lattice data. The numerical analysis is based on a large set of ensembles generated by the CLS effort, including physical pion masses, large volumes (with up to 96(3) x 192 sites and Lm(pi) = 6.4), and lattice spacings down to 0.039 fm, which allows us to take all the relevant limits. We find that some observables are much more sensitive to the choice of parametrization of the form factors than others. On the one hand, the z-expansion leads to significantly smaller values for the axial dipole mass than the dipole ansatz (MAz-exp = 1.02(10) GeV versus MAdipole = 1.31(8) GeV). On the other hand, we find that the result for the induced pseudoscalar coupling at the muon capture point is almost independent of the choice of parametrization (gPz-exp = 8.68(45) and gPdipole = 8.30(24)), and is in good agreement with both, chiral perturbation theory predictions and experimental measurement via ordinary muon capture. We also determine the axial coupling constant g(A).

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