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    Driven-dissipative turbulence in exciton-polariton quantum fluids

    R. Ferrini1 and S. V. Koniakhin1,2,*

    • *Contact author: kon@ibs.re.kr

    Phys. Rev. B 112, 205305 – Published 26 November, 2025

    DOI: https://doi.org/10.1103/khp5-5l3d

    Abstract

    The present paper is devoted to comprehensive theoretical studies of exciton-polariton quantum fluid specificities in the optics of their utilization for quantum turbulence research. We show that a nontrivial implementation of time-varying potential for excitation of quantum fluid (injection of quantized vortices) via the stirring procedure can be efficiently substituted with resonant excitation-based phase-imprinting techniques. The most efficient phase pattern corresponds to imprinting of tiles with randomly oriented plane waves in each. The resulting turbulent flows, spatial vortex distributions, and clustering statistics resemble those for the case of a conventional spoon-stirring scheme. We quantify the limitations on the lifetime and density depletion for the development and sustainability of quantum turbulence. The yield is the necessity to prevent the density depletion for more than one order of magnitude. Finally, we demonstrate that turbulence is robust with respect to alternating gain and loss at a certain range of modulation parameters, which corresponds to laser operating above and below condensation threshold.

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