Extraction of the nucleon axial form factor from Lattice QCD using NNLO chiral perturbation theory
Fernando Alvarado, Luis Alvarez-Ruso
Abstract
We calculate the nucleon axial form factor in relativistic chiral perturbation theory with Δ(1232) up to next-to-next-to-leading order (NNLO). Relevant low-energy constants are determined by fitting to recent lattice-QCD results at several pion masses, while accounting for the uncertainty associated with the truncation of the chiral expansion. We obtain a good description of the lattice data for momentum transfers up to Q20.6 GeV and pion masses up to Mπ400 MeV. We find that the explicit inclusion of the Δ resonance is required to reproduce the lattice-QCD pion-mass dependence of the axial charge and axial radius, as well as the momentum dependence of the form factor. At the physical point we obtain gA=1.257 0.011 and rA2=0.3120.037~fm2. Our analysis provides a model-independent and systematically improvable parametrization of the pion-mass and momentum dependence of the axial form factor, offering a framework for extrapolating lattice-QCD results to the physical point and for improving predictions of low-energy weak interactions involving nucleons.
Create a lesson
Related papers
Cosmological stasis and the coupled dark sector of the Dark Dimension
Alexander Stewart
Fast Surrogate for the Earth Matter Effect on Solar Neutrinos
Saeed Ansarifard
A Unitary Fixed Point Away from Threshold: Momentum-Surface EFT for Strong Mixing
Lorenzo De Ros, Javier Reig Navarro
Limitations of quantum tomography in Higgs-boson decays to four leptons
Morgan Del Gratta, Fabio Maltoni, Davide Pagani et al.
Bin-to-bin correlations in the extraction of proton's transverse structure
Laurent Favart, Francesco Hautmann, Aleksandra Lelek et al.
Cosmic Birefringence and Axiogenesis
Raymond T. Co, Lawrence J. Hall, Keisuke Harigaya et al.