Effective field theory for radiative corrections to charged-current processes II: Axial-vector coupling
Abstract
We discuss the hadronic structure-dependent radiative corrections to the axial-vector coupling that controls single-nucleon weak charged-current processes -- commonly denoted by . We match the Standard Model at the GeV scale onto chiral perturbation theory at next-to-leading order in the one-nucleon sector, in the presence of electromagnetic and weak interactions. As a result, we provide a representation for the corrections to in terms of infrared finite convolutions of simple kernels with the single-nucleon matrix elements of time-ordered products of two and three quark bilinears (vector, axial-vector, and pseudoscalar). We discuss strategies to determine the required non-perturbative input from data, lattice-QCD (+QED), and possibly hadronic models. This work paves the way for a precise comparison of the values of the ratio extracted from experiment and from lattice-QCD, which constrain physics beyond the Standard Model.
Cite
@article{arxiv.2410.21404,
title = {Effective field theory for radiative corrections to charged-current processes II: Axial-vector coupling},
author = {Vincenzo Cirigliano and Wouter Dekens and Emanuele Mereghetti and Oleksandr Tomalak},
journal= {arXiv preprint arXiv:2410.21404},
year = {2025}
}
Comments
53 pages, 3 figures, version published in Physical Review D, references added, minor changes in text