English

Hydrodynamic stabilization of self-organized criticality in a driven Rydberg gas

Quantum Gases 2021-03-31 v2

Abstract

Signatures of self-organized criticality (SOC) have recently been observed in an ultracold atomic gas under continuous laser excitation to strongly-interacting Rydberg states [S. Helmrich et al., Nature, 577, 481--486 (2020)]. This creates a unique possibility to study this intriguing dynamical phenomenon, e.g., to probe its robustness and universality, under controlled experimental conditions. Here we examine the self-organizing dynamics of a driven ultracold gas and identify an unanticipated feedback mechanism, which is especially important for systems coupled to thermal baths. It sustains an extended critical region in the trap center for a notably long time via hydrodynamic transport of particles from the flanks of the cloud toward the center. This compensates the avalanche-induced atom loss and leads to a characteristic flat-top density profile, providing an additional experimental signature for SOC and minimizing effects of inhomogeneity on the SOC features.

Keywords

Cite

@article{arxiv.2009.11908,
  title  = {Hydrodynamic stabilization of self-organized criticality in a driven Rydberg gas},
  author = {K. Klocke and T. M. Wintermantel and G. Lochead and S. Whitlock and M. Buchhold},
  journal= {arXiv preprint arXiv:2009.11908},
  year   = {2021}
}