TY - JOUR
T1 - Effect of Al2O3 addition on preparation and properties of AlN-Al2O3 multiphase ceramics
AU - Chen, Xing
AU - Yang, Jian
AU - Qiu, Tai
PY - 2010/12
Y1 - 2010/12
N2 - AlN-Al2O3 composites were prepared by hot-pressing sintering method at 1650°C under nitrogen atmosphere using AlN, Al2O3 as raw materials and Y2O3 as sintering additive. The phase composition and microstructure of AlN-Al2O3 were characterized by X-ray Diffraction (XRD), Scanning Electron Microscope (SEM) and Transmission Electron Microscope (TEM). The effect of Al2O3 addition on bending strength, thermal conductivity and dielectric properties of the materials were investigated. The results show that Al2O3 addition promotes the sintering densification and inhibits the grain growth of AlN matrix. The dense AlN-Al2O3 composites can be prepared when Al2O3 addition is 20 wt% and 30 wt%. Al2O3 particles play an obvious enhancement function on AlN matrix by its high strength and dispersion strengthening mechanism. As the Al2O3 addition increasing, the bending strength of the materials increases significantly, meanwhile thermal conductivity and dielectric properties are also improved. Typically, for the composites with 30 wt% Al2O3 addition, bending strength and thermal conductivity reach the maximum of 457 MPa and 57 W/(m · K), whereas dielectric constant and dielectric loss reach the minimum of 9.32 and 2.6 × 10-4, respectively. When Al2O3 addition reaches 40 wt%, the reaction between AlN and Al2O3 leads to the formation of AlON, which results in that the bending strength, thermal conductivity and dielectric properties of the composites decrease significantly.
AB - AlN-Al2O3 composites were prepared by hot-pressing sintering method at 1650°C under nitrogen atmosphere using AlN, Al2O3 as raw materials and Y2O3 as sintering additive. The phase composition and microstructure of AlN-Al2O3 were characterized by X-ray Diffraction (XRD), Scanning Electron Microscope (SEM) and Transmission Electron Microscope (TEM). The effect of Al2O3 addition on bending strength, thermal conductivity and dielectric properties of the materials were investigated. The results show that Al2O3 addition promotes the sintering densification and inhibits the grain growth of AlN matrix. The dense AlN-Al2O3 composites can be prepared when Al2O3 addition is 20 wt% and 30 wt%. Al2O3 particles play an obvious enhancement function on AlN matrix by its high strength and dispersion strengthening mechanism. As the Al2O3 addition increasing, the bending strength of the materials increases significantly, meanwhile thermal conductivity and dielectric properties are also improved. Typically, for the composites with 30 wt% Al2O3 addition, bending strength and thermal conductivity reach the maximum of 457 MPa and 57 W/(m · K), whereas dielectric constant and dielectric loss reach the minimum of 9.32 and 2.6 × 10-4, respectively. When Al2O3 addition reaches 40 wt%, the reaction between AlN and Al2O3 leads to the formation of AlON, which results in that the bending strength, thermal conductivity and dielectric properties of the composites decrease significantly.
KW - AlN-AlO multiphase ceramics
KW - Bending strength
KW - Dielectric properties
KW - Hot-pressing sintering
KW - Thermal conductivity
UR - http://www.scopus.com/inward/record.url?scp=78651444184&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:78651444184
SN - 1000-985X
VL - 39
SP - 1422
EP - 1428
JO - Rengong Jingti Xuebao/Journal of Synthetic Crystals
JF - Rengong Jingti Xuebao/Journal of Synthetic Crystals
IS - 6
ER -