English

Diquark Induced Short-Range Nucleon-Nucleon Correlations \& the EMC Effect

High Energy Physics - Phenomenology 2022-10-17 v4 High Energy Astrophysical Phenomena Nuclear Theory

Abstract

Diquark formation across a short-range nucleon-nucleon pair is proposed as the underlying QCD physics of short-range correlations (SRC) in nuclei. SRC pairs have been proposed as the cause of distorted quark behavior in nuclei; experimentally observed quark momentum distribution distortions termed the EMC effect. The strong spatial overlap of SRC pairs brings nucleon constituents within range of inter-nucleon QCD potentials and any bonds formed - such as the diquark bond - affects their distributions. In this SRC model, diquarks form in the 3C3C3ˉC\rm 3_C \otimes 3_C \rightarrow \bar{3}_C channel of SU(3)C\rm SU(3)_C acting on valence quarks from highly overlapping nucleon wavefunctions. The most energetically favorable diquark is a valence uu quark from one nucleon with a valence dd quark from the other in a spin-0 state bound together via continual single gluon exchange and an attractive quantum chromodynamics short-range potential. Formation of a new scalar isospin-singlet [ud][ud] diquark across a NN pair is proposed as the primary QCD-level theoretical foundation for SRC models of distorted structure functions in A3\rm A\geq 3 nuclei. Contributions from the higher mass spin-1 isospin triplet states (ud)(ud), (uu)(uu) and (dd)(dd) are possible, with the spin-1 (ud)(ud) diquark proposed as a higher mass but viable structure function distortion mechanism for the spin-1 ground state deuteron. Predictions are made for lepton scattering experiments on 3H\rm ^3H and 3He\rm ^3He nuclear targets, with implications for the coefficients of the 3-valence quark Fock states in the nucleon wavefunction.

Keywords

Cite

@article{arxiv.2009.06968,
  title  = {Diquark Induced Short-Range Nucleon-Nucleon Correlations \& the EMC Effect},
  author = {Jennifer Rittenhouse West},
  journal= {arXiv preprint arXiv:2009.06968},
  year   = {2022}
}

Comments

Version accepted for publication in Nuc.Phys.A

R2 v1 2026-06-23T18:33:06.904Z