ArXiv TLDR

Symmetry Preserving Contact Interaction Approaches: An Overview of Meson and Diquark Form Factors

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2604.15122

L. X. Gutiérrez-Guerrero, Roger José Hernández-Pinto

hep-phhep-th

TLDR

This paper reviews the symmetry-preserving Contact Interaction model, assessing its performance for meson and diquark form factors against recent data.

Key contributions

  • Provides an updated overview of the symmetry-preserving Contact Interaction (CI) model.
  • Examines mass spectra and elastic form factors for 40 mesons and their diquark partners.
  • Compares CI predictions with recent experimental data and other theoretical models like lattice QCD.
  • Supports CI as a practical tool for hadron structure studies, with future applications.

Why it matters

This paper validates the Contact Interaction model as a simple, consistent approach to nonperturbative QCD. It refines previous conclusions, supporting its utility for hadron structure studies and potential applications to baryons. The review also provides valuable benchmarks for forthcoming experimental measurements at facilities like FAIR, JLab, and EIC.

Original Abstract

We present an updated overview of the symmetry preserving Contact Interaction model in hadronic physics, developed a little over a decade ago to describe the mass spectrum and internal structure of mesons and diquarks composed of light and heavy quarks. Over the years, the Contact Interaction has evolved into a framework capable of treating both ground and excited states, providing a simple yet consistent approach to nonperturbative QCD. In this review, we examine the mass spectrum and elastic form factors of forty mesons with different spins and parities, together with their corresponding diquark partners. Importantly, we update the comparison of Contact Interaction predictions using recent results from the literature, offering a fresh perspective on the model's performance, strengths, and limitations. The analysis presented here refines previous conclusions and supports the Contact Interaction as a practical tool for hadron structure studies, with potential applications to baryons and multiquark states. We also present comparisons with other theoretical models and approaches, including lattice quantum chromodynamics, and comment on future prospects in view of ongoing and planned hadron structure experimental programs. In particular, forthcoming measurements at FAIR, together with future studies at Jefferson Lab and the Electron Ion Collider, are expected to provide key insights into hadron structure, with FAIR offering indirect constraints via hadron spectroscopy, hadronic interactions, and in-medium properties, while high-precision data on meson structure and form factors from Jefferson Lab and the Electron Ion Collider will provide valuable benchmarks to confront Contact Interaction based predictions.

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