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arXiv · 1405.0442

Long-range spatial correlations of particle displacements and the emergence of elasticity

Abstract

We examine correlations of transverse particle displacements and their relationship to the shear modulus of a glass and the viscosity of a fluid. To this end we use computer simulations to calculate a correlation function of the displacements, $S_4(q;t)$, which is similar to functions used to study heterogeneous dynamics in glass-forming fluids. We show that in the glass the shear modulus can be obtained from the long-time, small-q limit of $S_4(q;t)$. By using scaling arguments, we argue that a four-point correlation length $ξ_4(t)$ grows linearly in time in a glass and grows as $\sqrt{t}$ at long times in a fluid, and we verify these results by analyzing $S_4(q;t)$ obtained from simulations. For a viscoelastic fluid, the simulation results suggest that the crossover to the long-time $\sqrt{t}$ growth of $ξ_4(t)$ occurs at a characteristic decay time of the shear stress autocorrelation function. Using this observation, we show that the amplitude of the long-time $\sqrt{t}$ growth is proportional to $\sqrtη$ where $η$ is the viscosity of the fluid.

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BibTeXRIS

Elijah Flenner, Grzegorz Szamel. 2014-12-18. Long-range spatial correlations of particle displacements and the emergence of elasticity. https://doi.org/10.1103/physrevlett.114.025501

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