Coupling-induced universal dynamics in bilayer two-dimensional Bose gases
Abstract
The emergence of order in many-body systems and the associated self-similar dynamics governed by dynamical scaling laws is a hallmark of universality far from equilibrium. Measuring and classifying such nontrivial behavior for novel symmetry classes remains challenging. Here, we realize a well-controlled interlayer coupling quench in a tunable bilayer two-dimensional Bose gas, driving the system to an ordered phase. We observe robust self-similar dynamics and a universal critical exponent consistent with diffusion-like coarsening, driven by vortex and antivortex annihilation induced by the interlayer coupling. Our results extend the understanding of universal dynamics in many-body systems and provide a robust foundation for quantitative tests of nonequilibrium effective field theories.
Cite
@article{arxiv.2510.23600,
title = {Coupling-induced universal dynamics in bilayer two-dimensional Bose gases},
author = {En Chang and Vijay Pal Singh and Abel Beregi and Erik Rydow and Ludwig Mathey and Christopher J. Foot and Shinichi Sunami},
journal= {arXiv preprint arXiv:2510.23600},
year = {2025}
}