TY - JOUR
T1 - Mechanical and electrical properties of carbon nanofibers reinforced aluminum nitride composites prepared by plasma activated sintering
AU - Shi, Zhongqi
AU - Chen, Shugang
AU - Wang, Jiping
AU - Qiao, Guanjun
AU - Jin, Zhihao
PY - 2011/10/15
Y1 - 2011/10/15
N2 - High density carbon nanofibers (CNFs) reinforced aluminum nitride (AlN) composites were successfully fabricated by plasma activated sintering (PAS) method. The effects of CNFs on the microstructure, mechanical and electrical properties of the AlN composites were investigated. The experimental results showed that the grain growth of AlN was significantly inhibited by the CNFs. With 2wt.% CNFs added into the composites, the fracture toughness and flexural strength were increased, respectively to 5.03MPam1/2 and 354MPa, which were 20.9% and 13.4% higher than those of monolithic AlN. The main toughening mechanisms were CNFs pullout and bridging, and the main reason for the improvements in strength should be the fine-grain-size effect caused by the CNFs. The DC conductivity of the composites was effectively enhanced through the addition of CNFs, and showed a typical percolation behavior with a very low percolation threshold at the CNFs content of about 0.93wt.% (1.51vol.%).
AB - High density carbon nanofibers (CNFs) reinforced aluminum nitride (AlN) composites were successfully fabricated by plasma activated sintering (PAS) method. The effects of CNFs on the microstructure, mechanical and electrical properties of the AlN composites were investigated. The experimental results showed that the grain growth of AlN was significantly inhibited by the CNFs. With 2wt.% CNFs added into the composites, the fracture toughness and flexural strength were increased, respectively to 5.03MPam1/2 and 354MPa, which were 20.9% and 13.4% higher than those of monolithic AlN. The main toughening mechanisms were CNFs pullout and bridging, and the main reason for the improvements in strength should be the fine-grain-size effect caused by the CNFs. The DC conductivity of the composites was effectively enhanced through the addition of CNFs, and showed a typical percolation behavior with a very low percolation threshold at the CNFs content of about 0.93wt.% (1.51vol.%).
KW - A. Sintering
KW - B. Composites
KW - C. Electrical properties
KW - C. Mechanical properties
KW - Carbon nanofibers
UR - https://www.scopus.com/pages/publications/79959223086
U2 - 10.1016/j.jeurceramsoc.2011.05.011
DO - 10.1016/j.jeurceramsoc.2011.05.011
M3 - 文章
AN - SCOPUS:79959223086
SN - 0955-2219
VL - 31
SP - 2137
EP - 2143
JO - Journal of the European Ceramic Society
JF - Journal of the European Ceramic Society
IS - 12
ER -