The average number of tetrahedra per particle predicts diffusion time across a wide range of hard-sphere mixtures, and local tetrahedrality predicts single-particle mobility.
Designing slower glasses by manipulating their local structure
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Glasses remain an elusive and poorly understood state of matter. For example, it is not clear how we can design an efficient macroscopic glass former by tuning the properties of its microscopic building blocks. In this paper, we propose a simple directional colloidal model that reinforces the optimal icosahedral local structure of binary hard-sphere glasses. We show that only this specific symmetry results in a dramatic slowing down of the dynamics. Our results open the door to controlling the dynamics of dense glassy systems by selectively promoting specific local structural environments.
fields
cond-mat.soft 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
-
Tetrahedrality dictates dynamics in hard spheres
The average number of tetrahedra per particle predicts diffusion time across a wide range of hard-sphere mixtures, and local tetrahedrality predicts single-particle mobility.