Synthesis of nanowires and nanoparticles of cubic aluminium nitride
- 13 January 2004
- journal article
- Published by IOP Publishing in Nanotechnology
- Vol. 15 (3) , 370-373
- https://doi.org/10.1088/0957-4484/15/3/024
Abstract
Nanostructures of cubic aluminium nitride were synthesized by DC arc-plasma-induced melting of aluminium in a nitrogen–argon ambient. The material flux ejected from the molten aluminium surface was found to react with nitrogen under highly non-equilibrium conditions and subsequently condense on a water-cooled surface to yield a mixture of nanowires and nanoparticles of crystalline cubic aluminium nitride. Both x-ray diffraction and electron diffraction measurements revealed that the as-synthesized nitrides adopted the cubic phase. Fourier transform infrared spectroscopy was used to understand the bonding configuration. Microstructural features of the synthesized material were best studied by transmission electron microscopy. From these analyses cubic aluminium nitride was found to be the dominating phase for both nanowires and nanoparticles synthesized at low currents. The typical particle size distribution was found to range over 15–80 nm, whereas the wires varied from 30 to 100 nm in diameter and 500 to 700 nm in length, depending upon the process parameters such as arc current and the nitrogen pressure. The reaction products inside the plasma zone were also obtained theoretically by minimization of free energy and the favourable zone temperature necessary for the formation of aluminium nitride was found to be K. Results are discussed in view of the highly non-equilibrium conditions that prevail during the arc-plasma synthesis.Keywords
This publication has 16 references indexed in Scilit:
- Optical and dielectric properties of dc magnetron sputtered AlN thin films correlated with deposition conditionsMaterials Science and Engineering: B, 1999
- Nanoparticle production by plasmaMaterials Science and Engineering: B, 1999
- Nanophase alumina synthesis in thermal arc plasma and characterization: correlation to gas-phase studiesMaterials Science and Engineering: B, 1999
- Enhanced surface activity in nanocrystalline alumina as studied by neutron activation analysis, X-ray photoelectron and infrared spectroscopyMaterials Science and Engineering: B, 1997
- Stabilization of Cubic AlN in Epitaxial AlN/TiN SuperlatticesPhysical Review Letters, 1997
- Synthesis and structural characterization of nanocrystalline aluminium oxideMaterials Chemistry and Physics, 1994
- GaN, AlN, and InN: A reviewJournal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures, 1992
- Science at the atomic scaleNature, 1992
- Superfine Particle TechnologyPublished by Springer Nature ,1992
- Nanophase Materials Assembled from Atomic ClustersMRS Bulletin, 1990