English

Thermalization and prethermalization in the soft-wall AdS/QCD model

High Energy Physics - Phenomenology 2023-04-19 v2

Abstract

The real-time dynamics of chiral phase transition is investigated in a two-flavor (Nf=2N_f=2) soft-wall AdS/QCD model. To understand the dynamics of thermalization, we quench the system from initial states deviating from the equilibrium states. Then, we solve the nonequilibrium evolution of the order parameter (chiral condensate σqˉq\langle \sigma\equiv\bar{q}q\rangle). It is shown that the system undergoes an exponential relaxation at temperatures away from the critical temperature TcT_c. The relaxation time diverges at TcT_c, presenting a typical behavior of critical slowing down. Numerically, we extract the dynamic critical exponent zz, and get z2z\approx 2 by fitting the scaling behavior σtβ/(νz)\sigma\propto t^{-\beta/(\nu z)}, where the mean-field static critical exponents (order parameter critical exponent β=1/2\beta=1/2, correlation length critical exponent ν=1/2\nu=1/2 ) have been applied. More interestingly, it is remarked that, for a large class of initial states, the system would linger over a quasi-steady state for a certain period of time before the thermalization. It is suggested that the interesting phenomenon, known as prethermalization, has been observed in the framework of holographic models. In such prethermal stage, we verify that the system is characterized by a universal dynamical scaling law and described by the initial-slip exponent θ=0\theta=0.

Keywords

Cite

@article{arxiv.2204.11604,
  title  = {Thermalization and prethermalization in the soft-wall AdS/QCD model},
  author = {Xuanmin Cao and Jingyi Chao and Hui Liu and Danning Li},
  journal= {arXiv preprint arXiv:2204.11604},
  year   = {2023}
}

Comments

16 pages, 15 figures

R2 v1 2026-06-24T10:57:42.101Z