English

Investigating $\mathbf{N \to N\pi}$ axial matrix elements

High Energy Physics - Lattice 2021-10-25 v1

Abstract

Excited state contamination is one of the most challenging sources of systematics to tackle in the determination of nucleon matrix elements and form factors. The signal-to-noise problem prevents one from considering large source-sink time separations for the three-point functions to ensure ground state dominance. Instead, relevant analyses consider multi-state fits. Excited state contributions are particularly significant in the axial channel. In this work, we confront the problem directly. Since the major source of contamination is understood to be related to pion production, we consider three-point correlation functions with a nucleon operator at the source and a nucleon-pion interpolating operator at the sink, which allows studies of NNπN \to N\pi matrix elements. We discuss the construction of these three-point correlation functions and we solve the generalized eigenvalue problem (GEVP) using different sets of nucleon and nucleon-pion interpolators. The analysis is performed on the CLS ensemble A653 with mπ420m_\pi \approx 420 MeV. Results were generated with valence quark masses corresponding to mπ1750m_\pi \approx 1750 MeV and mπ420m_\pi \approx 420 MeV.

Cite

@article{arxiv.2110.11908,
  title  = {Investigating $\mathbf{N \to N\pi}$ axial matrix elements},
  author = {Lorenzo Barca and Gunnar S. Bali and Sara Collins},
  journal= {arXiv preprint arXiv:2110.11908},
  year   = {2021}
}

Comments

9 pages, 10 figures. Talk given at the 38th International Symposium on Lattice Field Theory (LATTICE2021) - Zoom@Massachusetts Institute of Technology

R2 v1 2026-06-24T07:06:43.617Z