Physical Review Research (Jan 2024)

Griffiths phase in a facilitated Rydberg gas at low temperatures

  • Daniel Brady,
  • Jana Bender,
  • Patrick Mischke,
  • Simon Ohler,
  • Thomas Niederprüm,
  • Herwig Ott,
  • Michael Fleischhauer

DOI
https://doi.org/10.1103/PhysRevResearch.6.013052
Journal volume & issue
Vol. 6, no. 1
p. 013052

Abstract

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The spread of excitations by Rydberg facilitation bears many similarities to epidemics. Such systems can be modeled with Monte Carlo simulations of classical rate equations to great accuracy as a result of high dephasing. Motivated by experiments, we theoretically analyze the dynamics of a Rydberg many-body system in the facilitation regime in the limits of high and low temperatures. In the high-temperature limit, a homogeneous mean-field behavior is recovered, while characteristic effects of heterogeneity can be seen in a frozen gas. At high temperatures, the system displays an absorbing-state phase transition and, in the presence of an additional loss channel, self-organized criticality. In a frozen or low-temperature gas, excitations are constrained to a network resembling an Erdős-Rényi graph. We show that the absorbing-state phase transition is replaced with an extended Griffiths phase, which we accurately describe by a susceptible-infected-susceptible model on the Erdős-Rényi network taking into account Rydberg blockade.