condensed matter physics

Critical non-thermal fixed point and the dynamical condensation phase transition

arXiv:2607.26620

summary

The paper presents a quantum kinetic framework to describe how three‑dimensional Bose gases evolve far from equilibrium after cooling quenches across the Bose‑Einstein condensation transition, revealing distinct universality classes and a new critical non‑thermal fixed point.

Abstract

Using a non-perturbative quantum kinetic framework, we develop a unified description of the far-from-equilibrium dynamics of three-dimensional Bose gases following cooling quenches across the Bose-Einstein condensation transition. By tracking the spatio-temporal evolution of the momentum distribution, we show that the equilibrium condensation threshold simultaneously acts as a dynamical critical point, separating distinct far-from-equilibrium universality classes governed by different non-equilibrium attractors. While quenches above the transition exhibit a single-timescale relaxation toward a thermal fixed point, quenches below the transition display a crossover from a transient weak-turbulence regime to a coarsening fixed point governed by the diffusive recombination of vortex lines. Quenches directly to the condensation threshold, finally, are controlled by a previously unidentified critical fixed point characterized by the superdiffusive spreading of critical fluctuations and a distinct set of dynamical exponents. Together, these dynamical scaling laws establish a far-from-equilibrium counterpart of the condensation phase transition, in which the equilibrium critical point also organizes the long-time non-equilibrium dynamics.

Topics & keywords

#bose-einstein condensation#non-equilibrium dynamics#quantum kinetic theory#critical phenomena#turbulence#vortex dynamicsnon-thermal fixed pointcooling quenchmomentum distributionweak turbulencecoarseningcritical exponents
Critical non-thermal fixed point and the dynamical condensation phase transition · wovepaper