Excited states and precision results for nucleon charges and form factors
Abstract
The exponentially falling signal-to-noise ratio in all nucleon correlation functions, and the presence of towers of multihadron excited states with relatively small mass gaps makes extraction of matrix elements of various operators within the ground state nucleon challenging. Theoretically, the allowed positive parity states with the smallest mass gaps are the , , , , states. A priori, the contribution of these states arises at one loop in chiral perturbation theory (PT), however, in many cases the contributions are enhanced. In this talk, I will review four such cases: the correlation functions from which the axial form factors, electric and magnetic form factors, the -term contribution to neutron electric dipole moment (nEDM), and the pion-nucleon sigma term are extracted. Including appropriate multihadron states in the analysis can lead to significantly different results compared to standard analyses with the mass gaps taken from fits to 2-point functions. The PT case for states is the most clear in the axial/pseudoscalar form factors which need to satisfy the PCAC relation between them. Our analyses, supported by PT, suggests similarly large effects in the calculations of the -term and the pion-nucleon sigma term that have significant phenomenological implications.
Keywords
Cite
@article{arxiv.2203.05647,
title = {Excited states and precision results for nucleon charges and form factors},
author = {Rajan Gupta and Tanmoy Bhattacharya and Vincenzo Cirigliano and Martin Hoferichter and Yong-Chull Jang and Balint Joo and Emanuele Mereghetti and Santanu Mondal and Sungwoo Park and Frank Winter and Boram Yoon},
journal= {arXiv preprint arXiv:2203.05647},
year = {2022}
}
Comments
9 pages 6 figures. Contribution to the 38th International Symposium on Lattice Field Theory, LATTICE2021 26th-30th July, 2021