Aging of a Homogeneously Quenched Colloidal Glass-forming Liquid
arXiv:1011.4025 · doi:10.1103/PhysRevE.82.061504
Abstract
The non-equilibrium self-consistent generalized Langevin equation theory of colloid dynamics is used to describe the non-stationary aging processes occurring in a suddenly quenched model colloidal liquid with hard-sphere plus short-ranged attractive interactions, whose static structure factor and van Hove function evolve irreversibly from the initial conditions before the quench to a final, dynamically arrested state. The comparison of our numerical results with available simulation data are highly encouraging.
References in corpus (5)
Cited by in corpus (18)
- Classical dynamical density functional theory: from fundamentals to applications
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- Spatially heterogeneous dynamics and locally arrested density fluctuations from first-principles