English

Radiative corrections to nucleon weak charges and Beyond Standard Model impact

High Energy Physics - Phenomenology 2021-02-09 v1 Nuclear Experiment Nuclear Theory

Abstract

The nucleon axial charge is a central ingredient in nuclear and particle physics, and a key observable in precision tests of the electroweak Standard Model sector and beyond. We report on the first complete calculation of its electroweak quantum corrections up to O(α)\mathcal{O}(\alpha), using a combination of current algebra techniques and QCD sum rules. We find a substantial enhancement due to the weak magnetism contribution in the elastic channel, and include higher-twist and target mass corrections at low Q2Q^2 to find ΔRA=0.02881(22)\Delta_R^A = 0.02881(22). Using analogous methods, we determine a new value for the vector charge renormalization, ΔRV=0.02474(27)\Delta_R^V = 0.02474(27), and show how the two most recent calculations can be brought into agreement. This allows us to determine a corrected experimental gA0=1.2730(13)g_A^0 = 1.2730(13), which is a >2σ>2\sigma shift away from the commonly quoted value. We use this new result to set constraints on exotic right-handed currents by comparing to lattice QCD results, and resolve a double-counting issue in the Vud|V_{ud}| extraction from mirror decays.

Keywords

Cite

@article{arxiv.2102.03458,
  title  = {Radiative corrections to nucleon weak charges and Beyond Standard Model impact},
  author = {Leendert Hayen},
  journal= {arXiv preprint arXiv:2102.03458},
  year   = {2021}
}