TY - JOUR
T1 - Poly(propylene) nanocomposites containing various carbon nanostructures
AU - Li, Yunfeng
AU - Zhu, Jiahua
AU - Wei, Suying
AU - Ryu, Jongeun
AU - Wang, Qiang
AU - Sun, Luyi
AU - Guo, Zhanhu
PY - 2011/11/15
Y1 - 2011/11/15
N2 - PP nanocomposites containing different carbon nanofillers (CNTs, CNFs, GnPs, CB) are fabricated and further processed by hot compression molding. A high level of nanofiller dispersion is found. The NCs exhibit improved thermal stability and higher crystallinity. Both electrical conductivity and real permittivity increase with increasing nanofiller loading. A strongly aspect ratio dependent electrical conductivity percolation is observed at loadings of 15.0, 12.0, 5.0, and 3.0 wt% for CB, GnPs, CNFs, and CNTs, respectively. The rheological behavior of the NC melts is also investigated. A small concentration of the nanofillers is found to affect the modulus and viscosity of the PP melts significantly. PP nanocomposites reinforced with various carbon nanostructures are made via a PP/xylene hot-solution method. The electrical percolation is found to be highly related to the aspect ratio of fillers. The resultant PNCs are analyzed using XRD, SEM, thermal analysis (TGA and DSC), dielectric analysis, and melt rheology.
AB - PP nanocomposites containing different carbon nanofillers (CNTs, CNFs, GnPs, CB) are fabricated and further processed by hot compression molding. A high level of nanofiller dispersion is found. The NCs exhibit improved thermal stability and higher crystallinity. Both electrical conductivity and real permittivity increase with increasing nanofiller loading. A strongly aspect ratio dependent electrical conductivity percolation is observed at loadings of 15.0, 12.0, 5.0, and 3.0 wt% for CB, GnPs, CNFs, and CNTs, respectively. The rheological behavior of the NC melts is also investigated. A small concentration of the nanofillers is found to affect the modulus and viscosity of the PP melts significantly. PP nanocomposites reinforced with various carbon nanostructures are made via a PP/xylene hot-solution method. The electrical percolation is found to be highly related to the aspect ratio of fillers. The resultant PNCs are analyzed using XRD, SEM, thermal analysis (TGA and DSC), dielectric analysis, and melt rheology.
KW - carbon nanostructure materials
KW - electrical conductivity
KW - melt rheological behavior
KW - nanocomposites
KW - poly(propylene) (PP)
UR - http://www.scopus.com/inward/record.url?scp=81755181057&partnerID=8YFLogxK
U2 - 10.1002/macp.201100364
DO - 10.1002/macp.201100364
M3 - 文章
AN - SCOPUS:81755181057
SN - 1022-1352
VL - 212
SP - 2429
EP - 2438
JO - Macromolecular Chemistry and Physics
JF - Macromolecular Chemistry and Physics
IS - 22
ER -