English

Dark Confinement-Deconfinement Phase Transition: A Roadmap from Polyakov Loop Models to Gravitational Waves

High Energy Physics - Phenomenology 2024-01-31 v4 High Energy Physics - Theory

Abstract

We explore the confinement-deconfinement phase transition (PT) of the first order (FO) arising in SU(N)SU(N) pure Yang-Mills theory, based on Polyakov loop models (PLMs), in light of the induced gravitational wave (GW) spectra. We demonstrate that the PLMs with the Haar measure term, involving models successful in QCD with N=3N=3, are potentially incompatible with the large NN scaling for the thermodynamical quantities and the latent heat at around the criticality of the FOPT reported from the lattice simulations. We then propose a couple of models of polynomial form, which we call the 4-6 PLM (with four- and six-point interactions among the basic PL fields which have center charge 1) and 4-8 PLM (with four- and eight-point interactions), and discuss how such models can naturally arise in the presence of a heavy PL with charge 2. We show that those models give the consistent thermodynamical and large NN properties at around the criticality. The predicted GW spectra are shown to have high enough sensitivity to be probed in the future prospected interferometers such as LISA, BBO, DICIGO, and TianQin.

Keywords

Cite

@article{arxiv.2101.03795,
  title  = {Dark Confinement-Deconfinement Phase Transition: A Roadmap from Polyakov Loop Models to Gravitational Waves},
  author = {Zhaofeng Kang and Shinya Matsuzaki and Jiang Zhu},
  journal= {arXiv preprint arXiv:2101.03795},
  year   = {2024}
}

Comments

18 pages, 8 figures. References added;one numerical error corrected, leading to the smaller gravitational wave amplitude

R2 v1 2026-06-23T21:58:59.909Z