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Percolation with coupled lasers: effect of non-linearities on the phase transition

  • Simon Mahler
  • , Nikita Stroev
  • , Mahmoud Abu Rmilah
  • , Asher Friesem
  • , Nir Davidson
  • Weizmann Institute of Science

Research output: Contribution to journalArticlepeer-review

Abstract

Controlled experimental studies of percolation are challenging due to difficulties in tuning site connectivity, isolating local interactions, and mitigating finite-size effects. In this work, we experimentally investigate percolation with a platform of coupled lasers, where connectivity, interaction strength, and system size can be controlled. Using a square array of (Formula presented) (Formula presented) lasers with astronomical number of possible cluster configurations, we show that the emergence of a percolating cluster corresponds to the onset of phase locking among the lasers. We also show that the percolation probability undergoes a second-order alike transition as a function of the site-occupation probability, with a threshold consistent with classical theoretical predictions. Surprisingly, we find that at low pump level, amplified mode competition (nonlinear regime) alters the effective behavior of the lasing sites and modify the nature of the percolation transition. The experimental results are interpreted by the means of a theoretical toy model with connectivity rules to the classical percolation.

Original languageEnglish
Article number067901
JournalReports on Progress in Physics
Volume89
Issue number6
DOIs
StatePublished - Jun 2026

Keywords

  • coupled lasers
  • optics and lasers
  • percolation
  • percolation theory
  • phase locking
  • phase transition
  • photonic simulator

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