Dynamical arrest, tracer diffusion and Kinetically Constrained Lattice Gases
Cristina Toninelli, Giulio Biroli
Abstract
We analyze the tagged particle diffusion for kinetically constrained models for glassy systems. We present a method, focusing on the Kob-Andersen model as an example, which allows to prove lower and upper bounds for the self diffusion coefficient DS. This method leads to the exact density dependence of DS, at high density, for models with finite defects and to prove diffusivity, DS>0, at any finite density for highly cooperative models. A more general outcome is that under very general assumptions one can exclude that a dynamical transition, like the one predicted by the Mode-Coupling-Theory of glasses, takes place at a finite temperature/chemical potential for systems of interacting particles on a lattice.
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