Diquark Correlations in Hadron Physics: Origin, Impact and Evidence
Abstract
The last decade has seen a marked shift in how the internal structure of hadrons is understood. Modern experimental facilities, new theoretical techniques for the continuum bound-state problem and progress with lattice-regularised QCD have provided strong indications that soft quark+quark (diquark) correlations play a crucial role in hadron physics. For example, theory indicates that the appearance of such correlations is a necessary consequence of dynamical chiral symmetry breaking, viz. a corollary of emergent hadronic mass that is responsible for almost all visible mass in the universe; experiment has uncovered signals for such correlations in the flavour-separation of the proton's electromagnetic form factors; and phenomenology suggests that diquark correlations might be critical to the formation of exotic tetra- and penta-quark hadrons. A broad spectrum of such information is evaluated herein, with a view to consolidating the facts and therefrom moving toward a coherent, unified picture of hadron structure and the role that diquark correlations might play.
Cite
@article{arxiv.2008.07630,
title = {Diquark Correlations in Hadron Physics: Origin, Impact and Evidence},
author = {M. Yu. Barabanov and M. A. Bedolla and W. K. Brooks and G. D. Cates and C. Chen and Y. Chen and E. Cisbani and M. Ding and G. Eichmann and R. Ent and J. Ferretti and R. W. Gothe and T. Horn and S. Liuti and C. Mezrag and A. Pilloni and A. J. R. Puckett and C. D. Roberts and P. Rossi and G. Salme and E. Santopinto and J. Segovia and S. N. Syritsyn and M. Takizawa and E. Tomasi-Gustafsson and P. Wein and B. B. Wojtsekhowski},
journal= {arXiv preprint arXiv:2008.07630},
year = {2020}
}
Comments
113 pages, 41 figures, 8 tables