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Exploring the QCD landscape with high-energy nuclear collisions

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arxiv 1102.2495 v1 pith:OU7EYWDI submitted 2011-02-12 nucl-ex hep-exhep-ph

Exploring the QCD landscape with high-energy nuclear collisions

classification nucl-ex hep-exhep-ph
keywords phasediagramcollisionsexploredenergyexperimentalnuclearproperties
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum chromodynamics (QCD) phase diagram is usually plotted as temperature (T) versus the chemical potential associated with the conserved baryon number (\mu_{B}). Two fundamental properties of QCD, related to confinement and chiral symmetry, allows for two corresponding phase transitions when T and \mu_{B} are varied. Theoretically the phase diagram is explored through non-perturbative QCD calculations on lattice. The energy scale for the phase diagram (\Lambda_{QCD} ~ 200 MeV) is such that it can be explored experimentally by colliding nuclei at varying beam energies in the laboratory. In this paper we review some aspects of the QCD phase structure as explored through the experimental studies using high energy nuclear collisions. Specifically, we discuss three observations related to the formation of a strongly coupled plasma of quarks and gluons in the collisions, experimental search for the QCD critical point on the phase diagram and freeze-out properties of the hadronic phase.

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  1. Quantum phases at high chemical potential in 2-flavor matrix-QC$_2$D

    hep-th 2026-07 conditional novelty 6.0

    In a matrix model of two-flavor two-color QCD, large baryon/isospin/chiral chemical potentials produce a web of quantum phases, including spin-1 LOFF-like states whose quark spin fraction can approach one.