Lesser Green's Function and Chirality Entanglement Entropy via the In-Medium NJL Model
Seung-il Nam

TL;DR
This paper investigates chiral symmetry restoration in quark matter using a novel entropy measure derived from Green's functions, revealing insights into quantum decoherence beyond traditional order parameters.
Contribution
It introduces the von Neumann chirality entropy based on lesser Green's functions within the in-medium NJL model, providing a new perspective on chiral symmetry restoration and quantum decoherence.
Findings
Chirality entropy increases with temperature and chemical potential.
S_chi approaches a maximum as the dynamical quark mass vanishes.
Critical scaling of S_chi differs from the chiral order parameter.
Abstract
We study chiral symmetry restoration in hot and dense quark matter using the von Neumann chirality entropy within the in-medium Nambu-Jona-Lasinio (NJL) model. Starting from the lesser Green's function G<(k), we construct the chirality-reduced correlator C_L = P_L G<(k) P_L and define the associated entropy S_chi = -Tr[C_L ln C_L + (1 - C_L) ln(1 - C_L)] to quantify quantum entanglement between left- and right-handed quark sectors. The dynamical quark mass M_q(T, mu_q) reproduces the expected QCD-like phase structure, showing a second-order transition in the chiral limit and a smooth crossover for finite current quark mass. The chirality entropy S_chi increases monotonically with temperature and chemical potential and approaches a maximal value as M_q -> 0. Analyzing its critical behavior, we find a scaling exponent beta_Schi ~ 1, distinct from that of the chiral order parameter. This…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Pulsars and Gravitational Waves Research · Quantum Chromodynamics and Particle Interactions
