Nucleon strange electromagnetic form factors
arXiv:1909.10744 · doi:10.1103/PhysRevD.101.031501
Abstract
The role of the strange quarks on the low-energy interactions of the proton can be probed through the strange electromagnetic form factors. Knowledge of these form factors provides essential input for parity-violating processes and contributes to the understanding of the sea quark dynamics. We determine the strange electromagnetic form factors of the nucleon within the lattice formulation of Quantum Chromodynamics using simulations that include light, strange and charm quarks in the sea all tuned to their physical mass values. We employ state-of-the-art techniques to accurately extract the form factors for values of the momentum transfer square up to 0.8~GeV. We find that both the electric and magnetic form factors are statistically non-zero. We obtain for the strange magnetic moment , the strange magnetic radius ~fm, and the strange charge radius ~fm.
7 pages and 5 figures
References in corpus (11)
- Model independent extraction of the proton charge radius from electron scattering
- Precision Measurement of the Weak Charge of the Proton
- Measurement of Strange Quark Contributions to the Vector Form Factors of the Proton at Q**2=0.22 (GeV/c)**2
- The SAMPLE Experiment and Weak Nucleon Structure
- The nucleon electromagnetic form factors from Lattice QCD
- Global Analysis of Nucleon Strange Form Factors at Low
- Renormalization constants for 2-twist operators in twisted mass QCD
- Renormalization of local quark-bilinear operators for Nf=3 flavors of SLiNC fermions
- Parity-violating aysmmetries in elastic scattering in the chiral quark-soliton model: Comparison with A4, G0, HAPPEX and SAMPLE
- Constraining nucleon strangeness
- Strange nucleon form factors: Solitonic approach to , , and and comparison with world data