TY - JOUR
T1 - Multi-walled carbon nanotubes/silicone rubber nanocomposites prepared by high shear mechanical mixing
AU - Katihabwa, Aloys
AU - Wang, Wencai
AU - Jiang, Yi
AU - Zhao, Xiuying
AU - Lu, Yonglai
AU - Zhang, Liqun
PY - 2011/6
Y1 - 2011/6
N2 - MWCNTs reinforced SiR nanocomposites were prepared through a high-shear mechanical mixing technique, using DCP as a curing agent. Under optimum conditions, the MWCNTs can be dispersed homogeneously in the SiR matrix to improve the mechanical properties of the nanocomposites. The mechanical properties of the nanocomposites such as tensile strength, elongation at break, and hardness were evaluated. In addition, the degree of crystallinity and the supercooling were calculated to characterize the crystallization behavior. From DSC study, it has been determined that the degree of crystallinity Xc and the super cooling δT, generally characterize the crystallization behavior of the nanocomposites. A decrease in Xc and δT indicate that the crystallization rate of the nanococomposites is increased. After pyrolysis, with the increase of CNT content, the decomposition rate or/and the weight loss of the nanocomposites decreased. The dispersion of carbon nanotubes in silicone rubber was characterized by using SEM. Finally, the effect of carbon nanotubes loading on electrical, thermal conductivity, and the Payne effect was also investigated.
AB - MWCNTs reinforced SiR nanocomposites were prepared through a high-shear mechanical mixing technique, using DCP as a curing agent. Under optimum conditions, the MWCNTs can be dispersed homogeneously in the SiR matrix to improve the mechanical properties of the nanocomposites. The mechanical properties of the nanocomposites such as tensile strength, elongation at break, and hardness were evaluated. In addition, the degree of crystallinity and the supercooling were calculated to characterize the crystallization behavior. From DSC study, it has been determined that the degree of crystallinity Xc and the super cooling δT, generally characterize the crystallization behavior of the nanocomposites. A decrease in Xc and δT indicate that the crystallization rate of the nanococomposites is increased. After pyrolysis, with the increase of CNT content, the decomposition rate or/and the weight loss of the nanocomposites decreased. The dispersion of carbon nanotubes in silicone rubber was characterized by using SEM. Finally, the effect of carbon nanotubes loading on electrical, thermal conductivity, and the Payne effect was also investigated.
KW - carbon nanotube
KW - crystallization
KW - electrical conductivity
KW - nanocomposite
KW - silicone rubber
UR - https://www.scopus.com/pages/publications/81755173999
U2 - 10.1177/0731684410394008
DO - 10.1177/0731684410394008
M3 - 文章
AN - SCOPUS:81755173999
SN - 0731-6844
VL - 30
SP - 1007
EP - 1014
JO - Journal of Reinforced Plastics and Composites
JF - Journal of Reinforced Plastics and Composites
IS - 12
ER -