The breakdown of the Stokes-Einstein (SE) law in fragile glassformers is examined by Molecular-Dynamics simulations of atomic liquids and polymers and consideration of the experimental data concerning the archetypical ortho-terphenyl glassformer. All the four systems comply with the universal scaling between the viscosity (or the structural relaxation) and the Debye-Waller factor «u2», the mean square amplitude of the particle rattling in the cage formed by the surrounding neighbors. It is found that the SE breakdown is scaled in a master curve by a reduced «u2». Two approximated expressions of the latter, with no and one adjustable parameter, respectively, are derived
During my Ph.D. I have worked on several topics, all connected by the same purpose to understand, fr...
Abstract: We report a numerical investigation of the viscoelastic behavior in models for steric repu...
The Stokes Einstein and Debye Stokes Einstein laws, which relate viscosity and diffusion, hold in li...
The breakdown of the Stokes-Einstein (SE) law in fragile glassformers is examined by Molecular-Dynam...
The breakdown of the Stokes-Einstein (SE) relation between diffusivity and viscosity at low temperat...
Nowadays, the experimental evidence of a crossover between two dynamical regimes for supercooled gla...
The breakdown of the Stokes-Einstein relation in supercooled liquids, which is the increase in the r...
We use molecular dynamics to investigate the glass transition occurring at large volume fraction, φ,...
If liquids, polymers, bio-materials, metals and molten salts can avoid crystallization during coolin...
The research within this thesis focuses on the behaviour of glass-forming systems as they are cooled...
This dissertation presents a collection of computational studies of model supercooled and glass-form...
On approaching the glass transition, the microscopic kinetic unit spends increasing time rattling in...
Glass-forming liquids exhibit upon cooling a striking divergence of their characteristic time-scale ...
In many glass-forming liquids, fractional Stokes-Einstein relation (SER) is observed above the glass...
The elastic models of the glass transition relate the increasing solidity of the glassforming system...
During my Ph.D. I have worked on several topics, all connected by the same purpose to understand, fr...
Abstract: We report a numerical investigation of the viscoelastic behavior in models for steric repu...
The Stokes Einstein and Debye Stokes Einstein laws, which relate viscosity and diffusion, hold in li...
The breakdown of the Stokes-Einstein (SE) law in fragile glassformers is examined by Molecular-Dynam...
The breakdown of the Stokes-Einstein (SE) relation between diffusivity and viscosity at low temperat...
Nowadays, the experimental evidence of a crossover between two dynamical regimes for supercooled gla...
The breakdown of the Stokes-Einstein relation in supercooled liquids, which is the increase in the r...
We use molecular dynamics to investigate the glass transition occurring at large volume fraction, φ,...
If liquids, polymers, bio-materials, metals and molten salts can avoid crystallization during coolin...
The research within this thesis focuses on the behaviour of glass-forming systems as they are cooled...
This dissertation presents a collection of computational studies of model supercooled and glass-form...
On approaching the glass transition, the microscopic kinetic unit spends increasing time rattling in...
Glass-forming liquids exhibit upon cooling a striking divergence of their characteristic time-scale ...
In many glass-forming liquids, fractional Stokes-Einstein relation (SER) is observed above the glass...
The elastic models of the glass transition relate the increasing solidity of the glassforming system...
During my Ph.D. I have worked on several topics, all connected by the same purpose to understand, fr...
Abstract: We report a numerical investigation of the viscoelastic behavior in models for steric repu...
The Stokes Einstein and Debye Stokes Einstein laws, which relate viscosity and diffusion, hold in li...