The chiral phase transition and the axial anomaly
Robert D. Pisarski, Fabian Rennecke
Abstract
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Robert D. Pisarski, Fabian Rennecke
Abstract
Open-access reader
To date numerical simulations of lattice QCD have not found a chiral phase transition of first order which is expected to occur for sufficiently light pions. We show how the restoration of an exact global chiral symmetry can strongly decrease the breaking of the approximate, anomalous $U_A(1)$ symmetry. This is testable on the lattice through simulations for one through four flavors. In QCD a small breaking of the $U_A(1)$ symmetry in the chirally symmetric phase generates novel experimental signals.
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To date numerical simulations of lattice QCD have not found a chiral phase transition of first order which is expected to occur for sufficiently light pions. We show how the restoration of an exact global chiral symmetry can strongly decrease the breaking of the approximate, anomalous $U_A(1)$ symmetry. This is testable on the lattice through simulations for one through four flavors. In QCD a small breaking of the $U_A(1)$ symmetry in the chirally symmetric phase generates novel experimental signals.
Key concepts: Chiral anomaly, Chiral symmetry breaking, Physics, Pion, Chiral symmetry, Phase transition, Quantum chromodynamics, Spontaneous symmetry breaking