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    Macroscopic yielding in jammed solids is accompanied by a nonequilibrium first-order transition in particle trajectories

    Takeshi Kawasaki1,2 and Ludovic Berthier1

    • 1Laboratoire Charles Coulomb, UMR 5221 CNRS, Montpellier, France
    • 2Department of Physics, Nagoya University, Nagoya 464-8602, Japan

    Phys. Rev. E 94, 022615 – Published 30 August, 2016

    DOI: https://doi.org/10.1103/PhysRevE.94.022615

    Abstract

    We use computer simulations to analyze the yielding transition during large-amplitude oscillatory shear of a simple model for soft jammed solids. Simultaneous analysis of global mechanical response and particle-scale motion demonstrates that macroscopic yielding, revealed by a smooth crossover in mechanical properties, is accompanied by a sudden change in the particle dynamics, which evolves from nondiffusive motion to irreversible diffusion as the amplitude of the shear is increased. We provide numerical evidence that this sharp change corresponds to a nonequilibrium first-order dynamic phase transition, thus establishing the existence of a well-defined microscopic dynamic signature of the yielding transition in amorphous materials in oscillatory shear.

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