Self-assembly of binary nanoparticle dispersions: from square arrays and stripe phases to colloidal corrals
arXiv:0901.4153 · doi:10.1209/0295-5075/85/56004
Abstract
The generation of nanoscale square and stripe patterns is of major technological importance since they are compatible with industry-standard electronic circuitry. Recently, a blend of diblock copolymer interacting via hydrogen-bonding was shown to self-assemble in square arrays. Motivated by those experiments we study, using Monte Carlo simulations, the pattern formation in a two-dimensional binary mixture of colloidal particles interacting via isotropic core-corona potentials. We find a rich variety of patterns that can be grouped mainly in aggregates that self-assemble in regular square lattices or in alternate strips. Other morphologies observed include colloidal corrals that are potentially useful as surface templating agents. This work shows the unexpected versatility of this simple model to produce a variety of patterns with high technological potential.
13 pages, 5 figures, submitted
References in corpus (5)
- Soft Spheres Make More Mesophases
- Designed Interaction Potentials via Inverse Methods for Self-Assembly
- Synthetic Diamond and Wurtzite Structures Self-Assemble with Isotropic Pair Interactions
- Zero temperature phase diagram of the square-shoulder system
- Lane-formation vs. cluster-formation in two dimensional square-shoulder systems: A genetic algorithm approach