Thermodynamics of quark matter with multiquark clusters in an effective Beth-Uhlenbeck type approach
D. Blaschke, M. Cierniak, O. Ivanytskyi, G. R\"opke

TL;DR
This paper develops a Beth-Uhlenbeck based model incorporating multiquark clusters and Polyakov loop effects to describe quark matter thermodynamics, successfully bridging hadron resonance gas and perturbative QCD regimes.
Contribution
It introduces a novel approach including multiquark clusters with continuum correlations and Polyakov-loop effects, providing a unified description of quark matter thermodynamics.
Findings
Suppression of colored multiquark clusters at low temperatures.
Accurate reproduction of lattice QCD thermodynamics.
First derivation of Polyakov-loop generalized distribution functions for n-quark clusters.
Abstract
We describe multiquark clusters in quark matter within a Beth-Uhlenbeck approach in a background gluon field coupled to the underlying chiral quark dynamics using the Polyakov gauge which establishes the center symmetry of color SU(3) that suppresses colored states as an aspect of confinement. Quark confinement is modeled by a large quark mass in vacuum motivated by a confining density functional approach. A multiquark cluster containing quarks and antiquarks is described as a binary composite of smaller subclusters and (). It has a spectrum consisting of a bound state and a scattering state continuum. For the corresponding cluster-cluster phase shifts we discuss simple ans\"atze that capture the Mott dissociation of clusters as a function of temperature and chemical potential. We go beyond the simple "step-up-step-down" model that ignores continuum…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Quantum Chromodynamics and Particle Interactions · Cold Atom Physics and Bose-Einstein Condensates
