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arXiv:2609.21907·v1·Nuclear Theory

Axial Symmetry Breaking in Hot QCD: From Topology to the Chiral Phase Transition

Heng-Tong Ding

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Abstract

Heating matter can restore symmetries spontaneously broken at low temperature. The axial symmetry of quantum chromodynamics (QCD) is different: it is present in the classical theory with massless quarks but is broken upon quantization by the axial anomaly. The anomaly persists at every temperature, yet its observable effects can weaken. Can hot matter nevertheless behave as though this symmetry were restored at long distances? Whether such effective axial restoration occurs depends on how microscopic quark and gluon dynamics governs the strength and spatial range of axial breaking. This review brings together theoretical developments and first-principles lattice QCD calculations. We examine how gluon-field topology shapes the low-lying Dirac modes and their correlations, how these modes contribute to axial breaking at different spatial scales, and what this implies for the order and critical behavior of the chiral phase transition as quark masses approach zero.

Comments: 31 pages, Contribution to the Encyclopedia of Nuclear Physics