Surface structure and solidification morphology of aluminum nanoclusters
β Scribed by F.L. Tang; X.X. Che; W.J. Lu; G.B. Chen; Y. Xie; W.Y. Yu
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 553 KB
- Volume
- 404
- Category
- Article
- ISSN
- 0921-4526
No coin nor oath required. For personal study only.
β¦ Synopsis
Classical molecular dynamics simulation with embedded atom method potential had been performed to investigate the surface structure and solidification morphology of aluminum nanoclusters Al n (n ΒΌ 256, 604, 1220 and 2048). It is found that Al cluster surfaces are comprised of ( 111) and (0 0 1) crystal planes. (11 0) crystal plane is not found on Al cluster surfaces in our simulation. On the surfaces of smaller Al clusters (n ΒΌ 256 and 604), (111) crystal planes are dominant. On larger Al clusters (n ΒΌ 1220 and 2048), ( 111) planes are still dominant but (0 0 1) planes cannot be neglected. Atomic density on cluster (111)/(0 0 1) surface is smaller/larger than the corresponding value on bulk surface. Computational analysis on total surface area and surface energies indicates that the total surface energy of an ideal Al nanocluster has the minimum value when (0 0 1) planes occupy 25% of the total surface area. We predict that a melted Al cluster will be a truncated octahedron after equilibrium solidification.
π SIMILAR VOLUMES
## Abstract For Abstract see ChemInform Abstract in Full Text.
Densely sintered synthetic hydroxyapatite (HA) is used as an implant material because of its excellent tissue biocompatibility. In order to maximize the biological potential of this calcium phosphate, we have investigated the incorporation of carbonate into HA to make a material which more closely r