Shape Selection in Diffusive Growth of Colloids and Nanoparticles
arXiv:0902.3243 · doi:10.1021/la900613p
Abstract
We report numerical investigations of a three-dimensional model of diffusive growth of fine particles, the internal structure of which corresponds to different crystal lattices. A growing cluster (particle) is immersed in, and exchanges monomer building blocks with a surrounding medium of diffusing (off-lattice) monomers. On-surface dynamics of the latter is accounted for by allowing, in addition to detachment, monomer motion to the neighboring vacant crystal sites, according to probabilistic rules mimicking local thermalization. The key new feature of our model is the focus on the growth of a single cluster, emerging as a crystalline core, without development of defects that can control large-scale growth modes. This single, defect-free core growth is imposed by the specific dynamical rules assumed. Our results offer a possible explanation of the experimentally observed shape uniformity, i.e., fixed, approximately even-sized proportions, in synthesis of uniform colloids and nanoparticles. We demonstrate the basic principles of well-defined particle shape emergence in such growth. Specifically, several shapes are possible for a given crystal structure. Formation of shapes that follow the crystal symmetry and are uniform, can be a result of the nonequilibrium nature of the growth process. The shape of a growing particle can be controlled by varying the relative rates of kinetic processes, as well as by adjusting the concentration of monomers in the surrounding medium.
PDF, 37 pages, 16 figures
References in corpus (3)
Cited by in corpus (12)
- Models of Synthesis of Uniform Colloids and Nanocrystals
- Synthesis of Dispersed Metal Particles for Applications in Photovoltaics, Catalysis, and Electronics
- Kinetic Monte Carlo Model of Breakup of Nanowires into Chains of Nanoparticles
- Morphology of Nanoclusters and Nanopillars Formed in Nonequilibrium Surface Growth for Catalysis Applications
- Formation of Nanoclusters and Nanopillars in Nonequilibrium Surface Growth for Catalysis Applications: Growth by Diffusional Transport of Matter in Solution Synthesis
- Modeling of Growth Morphology of Core-Shell Nanoparticles
- Nonequilibrium Kinetic Modeling of Sintering of a Layer of Dispersed Nanocrystals
- Kinetics Modeling of Nanoparticle Growth on and Evaporation off Nanotubes
- Restructuring and Breakup of Nanowires with the Diamond Cubic Crystal Structure into Nanoparticles
- Nucleation and growth of a core-shell composite nucleus by diffusion
- Roughening transition as a driving factor in the formation of self
- Nonequilibrium Kinetic Study of Sintering of Dispersed Nanoparticles