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    Kinetic decoupling in electron-beam-driven dusty plasma: Microscopic randomization coexisting with collective flow stability

    Adrian Scurtu1,*, Dorina Ticoş1, Nicoleta Udrea1, Maria L. Mitu1, Beatrice Paraschiv1,2, and Cătălin M. Ticoş1,3

    • *Contact author: adrian.scurtu@gmail.com

    Phys. Rev. E 113, 055215 – Published 29 May, 2026

    DOI: https://doi.org/10.1103/7w88-7zz8

    Abstract

    Energy injection and dissipation in nonequilibrium systems typically lock microscopic motion and collective flow into a coupled evolution. Our observations in electron-beam-driven dusty plasma reveal a distinct “kinetic decoupling” regime where this synchrony breaks down. While microscopic and collective entropies evolve in tandem at low energies, a sharp “entropic scissors” effect emerges at a critical threshold: microscopic velocity randomization reaches a maximum, while collective flow fluctuations are simultaneously suppressed. The resulting state behaves as an ergodic, thermal-like fluid where intense local mixing coexists with global transport stability. This phenomenology originates from a fundamental timescale separation between rapid energy injection and slower neutral-drag dissipation, sustaining microscopic randomization while quenching large-scale instabilities. The dual-entropy framework introduced here provides a model-independent diagnostic for emergent scale separation, applicable to diverse driven many-body platforms.

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