Phase behaviour of polydisperse spheres: simulation strategies and an application to the freezing transition
arXiv:1008.3068 · doi:10.1063/1.3510534
Abstract
The statistical mechanics of phase transitions in dense systems of polydisperse particles presents distinctive challenges to computer simulation and analytical theory alike. The core difficulty, namely dealing correctly with particle size fractionation between coexisting phases, is set out in the context of a critique of previous simulation work on such systems. Specialized Monte Carlo simulation techniques and moment free energy method calculations, capable of treating fractionation exactly, are then described and deployed to study the fluid-solid transition of an assembly of repulsive spherical particles described by a top-hat "parent" distribution of particle sizes. The cloud curve delineating the solid-fluid coexistence region is mapped as a function of the degree of polydispersity , and the properties of the incipient "shadow" phases are presented. The coexistence region is found to shift to higher densities as increases, but does not exhibit the sharp narrowing predicted by many theories and some simulations.
13 pages, 7 figures
References in corpus (13)
- Crystallization of hard-sphere glasses
- Equilibrium phase behavior of polydisperse hard spheres
- Crystalline phases of polydisperse spheres
- Fractionation effects in phase equilibria of polydisperse hard sphere colloids
- Solid-liquid coexistence of polydisperse fluids via simulation
- Phase diagram of a polydisperse soft-spheres model for liquids and colloids
- Accurate simulation estimates of cloud points of polydisperse fluids
- A polydisperse lattice-gas model
- Dynamical Study of Polydisperse Hard-Sphere System
- Separation and fractionation of order and disorder in highly polydisperse systems
- Wetting transitions in polydisperse fluids
- Solid-solid transition of the size-polydisperse hard-sphere system
- Weakly polydisperse systems: Perturbative phase diagrams that include the critical region
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