Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
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Thermodynamics of freezing and meltingCommunication: Local structure-mobility relationships of confined fluids reverse upon supercooling.Structural predictor for nonlinear sheared dynamics in simple glass-forming liquids.Nonergodicity parameters of confined hard-sphere glasses.Diverging Time Scale in the Dimensional Crossover for Liquids in Strong Confinement.Tuning structure and mobility of solvation shells surrounding tracer additives.Excess entropy scaling for the segmental and global dynamics of polyethylene melts.Packing frustration in dense confined fluids.Tagged-particle motion in a dense confined liquid.Anisotropic de Gennes Narrowing in Confined Fluids.The exemplary role of nanoconfinement in the proton transfer from acids to ammonia.Role of density modulation in the spatially resolved dynamics of strongly confined liquids.Glassy dynamics in confinement: planar and bulk limits of the mode-coupling theory.Colloidal diffusion in confined geometries.Multiple reentrant glass transitions in confined hard-sphere glasses
P2860
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P2860
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
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name
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
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Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
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label
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
@en
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
@nl
prefLabel
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
@en
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid.
@nl
P2860
P50
P1476
Predicting how nanoconfinement changes the relaxation time of a supercooled liquid
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P2093
Jeffrey R Errington
P2860
P304
P356
10.1103/PHYSREVLETT.111.235901
P407
P577
2013-12-02T00:00:00Z