Title :
Effects of nanofiller loading on the molecular motion and carrier transport in polyamide
Author :
Fuse, Norikazu ; Sato, Hiroki ; Ohki, Yoshimichi ; Tanaka, Toshikatsu
Author_Institution :
Dept. of Electr. Eng. & Biosci., Waseda Univ., Tokyo
fDate :
4/1/2009 12:00:00 AM
Abstract :
Effects of nanofiller loading on the molecular motion and carrier transport in polyamide-6/mica nanocomposites were discussed by analyzing their complex permittivity spectra. As a result, the following four dielectric polarization processes were observed; space charge polarization, interfacial polarization at crystalline/amorphous boundaries, alpha relaxation due to dipolar orientation, and beta relaxation due to rotation of amide groups bonded with water molecules. The enhancement of dielectric constant and that of loss factor due to abundance of mobile charge carriers are suppressed by the nanofiller loading. Furthermore, it was found that the relaxation time becomes longer by the mica nanofiller loading both for the dipolar orientation and for the rotation of amide groups. These results suggest that molecular motion that assists carrier transport is suppressed in nanocomposites, which indicates a strong interaction between the resin and filler.
Keywords :
carrier mobility; dielectric losses; dielectric polarisation; dielectric relaxation; electrical conductivity; filled polymers; mica; nanocomposites; permittivity; space charge; Al2O3-K2O-SiO2; alpha relaxation; beta relaxation; carrier transport; complex permittivity spectra; crystalline-amorphous boundaries; dielectric constant; dielectric loss factor; dielectric polarization process; dipolar orientation; interfacial polarization; mobile charge carriers; molecular motion; nanofiller loading; polyamide-6-mica nanocomposites; space charge polarization; water molecules; Amorphous materials; Bonding; Crystallization; Dielectric constant; Dielectric losses; Motion analysis; Nanocomposites; Permittivity; Polarization; Space charge; Polyamide, nanocomposites, complex permittivity, space charge, polarization, interfacial polarization, conductivity;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2009.4815188