Particle Monte Carlo simulation of string-like colloidal assembly in 3 dimensions
arXiv:1112.0103 · doi:10.1063/1.4733462
Abstract
As an extension of the former study on 2-dimensional systems, we simulate phase behavior of polymer-grafted colloidal particles in 3 dimensions by molecular Monte Carlo technique in the canonical ensemble. We use a spherically symmetric square-step repulsive interaction potential, which has been obtained using self-consistent field calculation. In previous articles, we have studied these model colloids in 2 dimensions and found that these particles, although their interaction is purely repulsive, self-assemble into a string-like assembly, in a narrow region of physical parameter sets. In the present work, we show the existence of the string-like assembly in 3-dimensional systems and study the statistical properties of the arrangement of these strings. The average string length diverges around the region where the melting transition line and the percolation transition line cross, which has also been found in 2 dimensions.
9 pages, 10 figures
References in corpus (5)
- Soft Spheres Make More Mesophases
- Quasi-binary amorphous phase in a 3D system of particles with repulsive-shoulder interactions
- Observation of condensed phases of quasi-planar core-softened colloids
- Zero temperature phase diagram of the square-shoulder system
- Lane-formation vs. cluster-formation in two dimensional square-shoulder systems: A genetic algorithm approach
Cited by in corpus (7)
- Stripe phase of two-dimensional core-softened systems: structure recognition
- Molecular simulation of 2-dimensional microphase separation of single-component homopolymers grafted onto a planar substrate
- Elastic deformations of loaded core-shell systems
- Two-dimensional percolation phenomena of single-component linear homopolymer brushes
- Devitrification and Melting Dynamics in Vapor Deposited Water Ice
- Molecular-shape- and size-independent power-law dependence of percolation thresholds on radius of gyration in ideal molecular systems
- Conducting transition analysis of thin films composed of long flexible macromolecules: Percolation study