Confinement in QCD: A Hybrid String Model with Vortex Corrections and Entanglement Entropy
Fidele J. Twagirayezu

TL;DR
This paper presents a hybrid string model for QCD confinement that incorporates vortex corrections and analyzes the entanglement entropy of quark-antiquark pairs, revealing how flux tubes and vortices influence quantum correlations.
Contribution
It introduces a novel analytical framework combining flux tubes, vortex topological effects, and entanglement entropy in SU(3) gauge theory, advancing understanding of confinement's quantum structure.
Findings
Vortex corrections modify the confining potential.
Confinement increases entanglement entropy.
Vortices enhance decoherence of quark-antiquark pairs.
Abstract
Confinement in Quantum Chromodynamics (QCD), binding quarks and gluons into hadrons, is characterized by a linear potential and the Wilson loop area law. We develop an analytical framework in gauge theory, proposing a hybrid effective string model that integrates chromoelectric flux tubes with topological corrections from \(\mathbb{Z}_3\) center vortices. Using strong-coupling expansion, we derive the Wilson loop expectation value, incorporating novel logarithmic vortex corrections, and compute a modified confining potential with non-universal terms. A central focus is the entanglement entropy of a confined quark-antiquark pair, modeled as a phase-damping quantum channel driven by the confining potential and vortex effects. We analytically demonstrate that confinement increases entropy, reflecting suppressed quantum correlations due to flux tube formation,…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Particle physics theoretical and experimental studies · High-Energy Particle Collisions Research
