Physical Implications of the Extrapolation and Statistical Bootstrap of the Nucleon Structure Function Ratio for Mirror Nuclei He and H
arXiv:2210.04372 · doi:10.1103/PhysRevC.107.065203
Abstract
A nuclear physics example of statistical bootstrap is used on the MARATHON data nucleon structure function ratio, , in the quark momentum fraction and regions. The extrapolated ratio value as quark momentum fraction approaches 0.4 and this value is compared to theoretical predictions. The extrapolated ratio when favors the simple model of isospin symmetry with the complete dominance of seaquarks at low momentum fraction. At high-, the proton quark distribution function ratio is derived from the ratio and found to be . Our extrapolated values for both the ratio and the parton distribution function ratio most closely match perturbative QCD values from quark counting and helicity conservation arguments but still differ by roughly . The mismatch to theoretical predictions may be ameliorated if two compatible models act simultaneously in the nucleon wavefunction. One such example is nucleon wavefunctions composed of a linear combination of a quark-diquark state and a 3-valence quark correlated state with coefficients that combine to give the extrapolated ratio of .
References in corpus (5)
- Distribution Functions of the Nucleon and Pion in the Valence Region
- pi- and rho-mesons, and their diquark partners, from a contact interaction
- Revealing the short-range structure of the "mirror nuclei" H and He
- Isovector EMC effect from global QCD analysis with MARATHON data
- Valence quark ratio in the proton