Out-of-equilibrium Chiral Magnetic Effect from simulations on Euclidean lattices
P. V. Buividovich

TL;DR
This paper introduces a new lattice QCD observable to study the out-of-equilibrium Chiral Magnetic Effect, providing insights into its suppression or vanishing in thermal equilibrium and potential explanations for experimental non-observations.
Contribution
It proposes a novel Euclidean-time correlator of axial charge and electric current to investigate the out-of-equilibrium CME response in lattice QCD simulations.
Findings
The axial-vector correlator aligns with free fermion results near the chiral crossover.
The correlator's behavior supports the vanishing of CME current in thermal equilibrium.
Methodology offers a new way to explore QCD corrections' role in CME suppression.
Abstract
The status of the Chiral Magnetic Effect (CME) response in full Quantum Chromodynamics (QCD) has been controversial so far, with previous lattice QCD studies indicating either its strong suppression or vanishing in thermal equilibrium state. We introduce the Euclidean-time correlator of axial charge and electric current as an observable that can be used to study the finite out-of-equilibrium CME response in first-principle lattice QCD simulations with background magnetic field. This observable directly reflects the fact that in the background magnetic field, a state with nonzero axial charge features nonzero electric current. For free fermions, the axial-vector correlator only receives contributions from the Lowest Landau Level, and exhibits a linear dependence on both magnetic field and temperature with a universal coefficient. With an appropriate regularization, non-vanishing…
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Taxonomy
TopicsGeomagnetism and Paleomagnetism Studies · Magnetic Properties of Alloys · Magnetic properties of thin films
