English

Condensation and prescaling in spatial Polyakov loop correlations far from equilibrium

High Energy Physics - Phenomenology 2025-05-26 v2 Quantum Gases High Energy Physics - Lattice Nuclear Theory

Abstract

The far-from-equilibrium dynamics of spatial Polyakov loop correlations, which provide gauge-invariant observables akin to effective particle numbers for gluon plasmas, are investigated within real-time SU(Nc)\mathrm{SU}(N_c) lattice gauge theory at weak couplings and large gluon occupations. The momentum zero mode of these correlations reveals the dynamic formation of a condensate, while at nonzero momenta, energy is transported toward the ultraviolet. We demonstrate that the non-zero momentum dynamics is well described by a direct cascade in terms of gauge-invariant Polyakov loop excitations, exhibiting self-similar prescaling indicative of a nonthermal attractor. This behavior can be analytically understood through perturbation theory for the Polyakov loop correlations and the established dynamics of gauge field correlations. We perform simulations for both SU(2)\mathrm{SU}(2) and SU(3)\mathrm{SU}(3) gauge groups, providing further consistency checks on the NcN_c-dependence of perturbative expectations. No evidence of an inverse cascade toward lower momenta is found for momenta above the electric screening scale.

Keywords

Cite

@article{arxiv.2411.05582,
  title  = {Condensation and prescaling in spatial Polyakov loop correlations far from equilibrium},
  author = {Daniel Spitz and Kirill Boguslavski and Thimo Preis},
  journal= {arXiv preprint arXiv:2411.05582},
  year   = {2025}
}

Comments

12 pages, 8 figures; published version

R2 v1 2026-06-28T19:53:02.487Z