English

Nucleon axial-vector and pseudoscalar form factors, and PCAC relations

High Energy Physics - Phenomenology 2022-06-01 v3

Abstract

We use a continuum quark+diquark approach to the nucleon bound-state problem in relativistic quantum field theory to deliver parameter-free predictions for the nucleon axial and induced pseudoscalar form factors, GAG_A and GPG_P, and unify them with the pseudoscalar form factor G5G_5 or, equivalently, the pion-nucleon form factor GπNNG_{\pi NN}. We explain how partial conservation of the axial-vector current and the associated Goldberger-Treiman relation are satisfied once all necessary couplings of the external current to the building blocks of the nucleon are constructed consistently; in particular, we fully resolve the seagull couplings to the diquark-quark vertices associated with the axial-vector and pseudoscalar currents. Among the results we describe, the following are worth highlighting. A dipole form factor defined by an axial charge gA=GA(0)=1.25(3)g_A=G_A(0)=1.25(3) and a mass-scale MA=1.23(3)mNM_A = 1.23(3) m_N, where mNm_N is the nucleon mass, can accurately describe the pointwise behaviour of GAG_A. Concerning GPG_P, we obtain the pseudoscalar charge gp=8.80(23)g_p^\ast = 8.80(23), and find that the pion pole dominance approach delivers a reliable estimate of the directly computed result. Our computed value of the pion-nucleon coupling constant, gπNN/mN=14.02(33)/GeVg_{\pi NN}/m_N =14.02(33)/{\rm GeV} is consistent with recent precision determinations.

Keywords

Cite

@article{arxiv.2103.02054,
  title  = {Nucleon axial-vector and pseudoscalar form factors, and PCAC relations},
  author = {Chen Chen and Christian S. Fischer and Craig D. Roberts and Jorge Segovia},
  journal= {arXiv preprint arXiv:2103.02054},
  year   = {2022}
}

Comments

27 pages, 13 figures, 1 table

R2 v1 2026-06-23T23:41:04.424Z