The breakdown of the Stokes-Einstein relation in supercooled binary liquids
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Bordat, P
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Univ Lille 1, Lab Dynam & Struct Mat Mol, UMR 8024, F-59655 Villeneuve Dascq, FranceUniv Lille 1, Lab Dynam & Struct Mat Mol, UMR 8024, F-59655 Villeneuve Dascq, France
Bordat, P
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Affouard, F
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机构:Univ Lille 1, Lab Dynam & Struct Mat Mol, UMR 8024, F-59655 Villeneuve Dascq, France
Affouard, F
Descamps, M
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Descamps, M
Müller-Plathe, F
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机构:Univ Lille 1, Lab Dynam & Struct Mat Mol, UMR 8024, F-59655 Villeneuve Dascq, France
Müller-Plathe, F
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[1] Univ Lille 1, Lab Dynam & Struct Mat Mol, UMR 8024, F-59655 Villeneuve Dascq, France
[2] Max Planck Inst Polymer Res, D-55128 Mainz, Germany
Using reverse non-equilibrium molecular dynamics simulations, we report the calculation of the shear viscosity and the tracer diffusion coefficient of a binary Lennard-Jones mixture that is known as a model glass-former. Several remarkable temperatures are well reproduced in our calculations, i.e. T-S (the onset of slow dynamics), T-c (the critical temperature predicted by the mode-coupling theory) and T-K (the Kauzmann temperature). A breakdown of the Stokes-Einstein relation is found at temperature T-S. We propose that, at low temperatures below T-S, the size of single-particle positional fluctuations between particle-hopping events corresponds to the length measured by the Stokes-Einstein relation, which is equated to the hydrodynamic radius of particles at high temperatures.
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页码:5397 / 5407
页数:11
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[1]
Allen M. P., 1987, Computer Simulation of Liquids