4.8 Article

Topological order and thermal equilibrium in polariton condensates

Journal

NATURE MATERIALS
Volume 17, Issue 2, Pages 145-151

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/NMAT5039

Keywords

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Funding

  1. MIUR project Beyond Nano
  2. ERC project POLAFLOW [308136]
  3. EPSRC [EP/I028900/2, EP/K003623/2]
  4. EPSRC [EP/I028900/2, EP/I028900/1, EP/K003623/1, EP/K003623/2] Funding Source: UKRI
  5. Engineering and Physical Sciences Research Council [EP/K003623/1, EP/K003623/2, EP/I028900/1, EP/I028900/2] Funding Source: researchfish

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The Berezinskii-Kosterlitz-Thouless phase transition from a disordered to a quasi-ordered state, mediated by the proliferation of topological defects in two dimensions, governs seemingly remote physical systems ranging from liquid helium, ultracold atoms and superconducting thin films to ensembles of spins. Here we observe such a transition in a short-lived gas of exciton-polaritons, bosonic light-matter particles in semiconductor microcavities. The observed quasi-ordered phase, characteristic for an equilibrium two-dimensional bosonic gas, with a decay of coherence in both spatial and temporal domains with the same algebraic exponent, is reproduced with numerical solutions of stochastic dynamics, proving that the mechanism of pairing of the topological defects (vortices) is responsible for the transition to the algebraic order. This is made possible thanks to long polariton lifetimes in high-quality samples and in a reservoir-free region. Our results show that the joint measurement of coherence both in space and time is required to characterize driven-dissipative phase transitions and enable the investigation of topological ordering in open systems.

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