Among advanced ceramics, aluminum nitride (AlN) had attracted much attention in the field of electrical and structural applications due to its outstanding properties. However, it is difficult to fabricate AlN coating by conventional thermal spray processes directly. Due to the thermal decomposition of feedstock AlN powder during spraying without a stable melting phase (which is required for deposition in thermal spray). Reactive plasma spraying (RPS) has been considered as a promising technology for in-situ formation of AlN thermally sprayed coatings. In this study the possibility of fabrication of AlN coating by reactive plasma nitriding of alumina (Al2O3) powder using N2/H2 plasma was investigated. It was possible to fabricate a cubic-AlN (c-AlN) based coating and the fabricated coating consists of c-AlN, α-Al2O3, Al5O6N and γ-Al2O3. It was difficult to understand the nitriding process from the fabricated coatings. Therefore, the Al2O3 powders were sprayed and collected in water. The microstructure observation of the collected powder and its cross section indicate that the reaction started from the surface. Thus, the sprayed particles were melted and reacted in high temperature reactive plasma and formed aluminum oxynitride which has cubic structure and easily nitride to c-AlN. During the coatings process the particles collide, flatten, and rapidly solidified on a substrate surface. The rapid solidification on the substrate surface due to the high quenching rate of the plasma flame prevents AlN crystal growth to form the hexagonal phase. Therefore, it was possible to fabricate c-AlN/Al2O3 based coatings through reactive plasma nitriding reaction of Al2O3 powder in thermal spray.
[1]
M. Shahien,et al.
Cubic Aluminum Nitride Coating Through Atmospheric Reactive Plasma Nitriding
,
2010
.
[2]
T. Yoshitake,et al.
Growth of metastable cubic AlN by reactive pulsed laser deposition
,
2008
.
[3]
J. Kuang,et al.
Formation and characterization of cubic AlN crystalline in a carbothermal reduction reaction
,
2005
.
[4]
Maher I. Boulos,et al.
Plasma power can make better powders
,
2004
.
[5]
V. Rohatgi,et al.
Synthesis of nanowires and nanoparticles of cubic aluminium nitride
,
2004
.
[6]
K. Seemann,et al.
Study on atmospheric plasma spraying of Al2O3 using on-line particle monitoring
,
2003
.
[7]
G. Sundararajan,et al.
Thermal spray coating of aluminum nitride utilizing the detonation spray technique
,
2002
.
[8]
A. H. King,et al.
Transmission electron microscopy study of rapid solidification of plasma sprayed zirconia. Part I. First splat solidification
,
2001
.
[9]
S. Sampath,et al.
Splat formation and microstructure development during plasma spraying: deposition temperature effects
,
2001
.
[10]
K. Cai,et al.
Preparation of Al2O3-AlON and Al2O3-AlN composites via reaction-bonding
,
2001
.
[11]
F. Boey,et al.
Plasma spray processing of Al2O3/AlN composite powders
,
1999
.
[12]
Nakamura,et al.
The roles of structural imperfections in InGaN-based blue light-emitting diodes and laser diodes
,
1998,
Science.