The fragile-to-strong dynamical crossover and the system viscoelasticity in attractive glass forming colloids
Academic Article
Publication Date:
2015
abstract:
The dynamical arrest phenomena of an adhesive
hard-sphere (AHS) colloid, L64-D2O system has been
studied by using calorimetry and the complex shear modulus.
This system is characterized by a rich temperature (T ) and volume fraction (?) phase diagram with a percolation
line (PT). According to the mode-coupling theory
(MCT), a cusp-like singularity and two glassy phases,
one attractive (AG) and one repulsive (RG), are supposed
to coexist in the phase diagram. The MCT scaling laws
used to study the shear viscosity with ? and T as control
parameters propose the existence of fragile-to-strong
dynamic crossover (FSDC) analogous to that observed in
molecular supercooled liquid glass formers. The measured
critical values of the control parameters, coincident with
the PT line, where the clustering process generates the AG
phase, define the FSDC locus. This is in agreement with
the extended mode-coupling theory that takes into account
both cage and inter-cluster hopping effects. In this work, we
demonstrate, by considering the frequency dependence of
the complex moduli, that there is the onset of a system viscoelasticity
as an effect of the clustering accompanying the
FSDC. We will show as the measured frequency-dependent
complex moduli satisfy the scaling relations predicted by
the scalar elasticity percolation theory and well account for
the system evolution toward the glass transition process.
Iris type:
01.01 Articolo in rivista
Keywords:
Adhesive hard-sphere; Dynamical arrest; Dynamical crossover
List of contributors:
Mallamace, Francesco; Corsaro, Carmelo
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