Anomalous Dynamic Arrest in a Mixture of Big and Small Particles
arXiv:cond-mat/0604171 · doi:10.1103/PhysRevE.74.021409
Abstract
We present molecular dynamics simulations on the slow dynamics of a mixture of big and small soft-spheres with a large size disparity. Dynamics are investigated in a broad range of temperature and mixture composition. As a consequence of large size disparity, big and small particles exhibit very different relaxation times. As previously reported for simple models of short-ranged attractive colloids and polymer blends, several anomalous dynamic features are observed: i) sublinear behavior for mean squared displacements, ii) concave-to-convex crossover for density-density correlators, by varying temperature or wavevector, iii) logarithmic decay for specific wavevectors of density-density correlators. These anomalous features are observed over time intervals extending up to four decades, and strongly resemble predictions of the Mode Coupling Theory (MCT) for state points close to higher-order MCT transitions, which originate from the competition between different mechanisms for dynamic arrest. For the big particles we suggest competition between soft-sphere repulsion and depletion effects induced by neighboring small particles. For the small particles we suggest competition between bulk-like dynamics and confinement, respectively induced by neighboring small particles and by the slow matrix of big particles. By increasing the size disparity, a new relaxation scenario arises for the small particles. Self-correlators decay to zero at temperatures where density-density correlations are frozen. The behavior of the latters resembles features characteristic of type-A MCT transitions, defined by a zero value of the critical non-ergodicity parameter.
Version 2. Added major new results
References in corpus (7)
- Liquid-glass transition of a fluid confined in a disordered porous matrix: A mode-coupling theory
- Logarithmic Relaxation in Glass-Forming Systems
- Alpha-Relaxation Processes in Binary Hard-Sphere Mixtures
- Mixing effects for the structural relaxation in binary hard-sphere liquids
- Logarithmic Relaxation in a Colloidal System
- Higher-order glass-transition singularities in systems with short-ranged attractive potentials
- Liquid-glass transition of confined fluids: Some insights from a mode-coupling theory
Cited by in corpus (20)
- Relaxation Scenarios in a Mixture of Large and Small Spheres: Dependence on the Size Disparity
- Mode-coupling theory for the slow collective dynamics of fluids adsorbed in disordered porous media
- Single-particle and collective slow dynamics of colloids in porous confinement
- The Localization Transition of the Two-Dimensional Lorentz Model
- Dynamic Arrest in Polymer Melts: Competition between Packing and Intramolecular Barriers
- Multiple glass transitions in star polymer mixtures: Insights from theory and simulations
- Rounding of the localization transition in model porous media
- Dynamic arrest of colloids in porous environments: disentangling crowding and confinement
- Impact of random obstacles on the dynamics of a dense colloidal fluid
- Statistical mechanics of homogeneous partly pinned fluid systems
- Relaxation dynamics in a transient network fluid with competing gel and glass phases
- Dynamic arrest in model porous media -- intermediate scattering functions
- Tests of mode coupling theory in a simple model for two-component miscible polymer blends
- Space-resolved dynamics of a tracer in a disordered solid
- Relaxation dynamics in a binary hard-ellipse liquid
- Slow dynamics coupled with cluster formation in ultrasoft-potential glasses
- Localization phenomena in models of ion-conducting glass formers
- Glassy dynamics of sticky hard spheres beyond the mode-coupling regime
- Rheological response of a glass-forming liquid having large bidispersity
- Fluid-fluid demixing transitions in colloid--polyelectrolyte star mixtures