Formation of an Icosahedral Structure during the Freezing of Gold Nanoclusters: Surface-Induced Mechanism
arXiv:physics/0205024 · doi:10.1103/PhysRevLett.89.275502
Abstract
The freezing behavior of gold nanoclusters was studied by employing molecular dynamics simulations based on a semi-empirical embedded-atom method. Investigations of the gold nanoclusters revealed that, just after freezing, ordered nano-surfaces with a fivefold symmetry were formed with interior atoms remaining in the disordered state. Further lowering of temperatures induced nano-crystallization of the interior atoms that proceeded from the surface towards the core region, finally leading to an icosahedral structure. These dynamic processes explain why the icosahedral cluster structure is dominantly formed in spite of its energetic metastability.
9 pages, 4 figures(including 14 eps-files)
Cited by in corpus (10)
- Melting of icosahedral gold nanoclusters from molecular dynamics simulations
- Melting and Equilibrium Shape of Icosahedral Gold Nanoparticles
- Locally preferred structure in simple atomic liquids
- Bulk metallic glass-like structure of small icosahedral metallic nanoparticles
- Early-Stage Bifurcation of Crystallization in a Sphere
- Free Energy Approach to the Formation of an Icosahedral Structure during the Freezing of Gold Nanoclusters
- Atomic and electronic structure transformations of silver nanoparticles under rapid cooling conditions
- Amorphous Precursors of Crystallization during Spinodal Decomposition
- Out-of-equilibrium Polymorph Selection in Nanoparticle Freezing
- Immersed nano-sized Al dispersoids in an Al matrix; effects on the structural and mechanical properties by Molecular Dynamics simulations