Title :
Effect of filler concentration on dielectric behaviour and on charge trapping in PP/clay nanocomposites
Author :
Ambid, M. ; Mary, D. ; Teyssedre, G. ; Laurent, C. ; Montanari, G.C. ; Kaempfer, D. ; Mulhaupt, R.
Author_Institution :
Lab. de Genie Electr., Univ. Paul Sabatier, Toulouse, France
Abstract :
Nanocomposites obtained from polypropylene base materials and organophilic layered silicate as nanofiller might be a great source of innovation for the development of advanced electrical devices. Previous investigations on dielectric and electrical properties of such nanocomposites with either isotactic (iPP) or syndiotactic (sPP) polypropylene as matrix have shown that trapping properties are highly modified by the presence of nanofillers. A reduction of space charge accumulation under DC stress has been shown. In this communication, we report on electrical properties using dielectric and photoluminescence spectroscopy. Dielectric spectroscopy has been used to characterize ionic conduction and to evaluate the effect of the filler concentration on the dielectric permittivity. A relaxation process has been observed at high filler concentration, high temperature and low frequency. Spectral analysis of photoluminescence was performed with the aim of inferring the nature of trapping centers. It appears that nanocomposites made of iPP and sPP exhibit different behaviours.
Keywords :
clay; dielectric materials; dielectric relaxation; filled polymers; ionic conductivity; nanocomposites; permittivity; photoluminescence; space charge; DC stress; charge trapping; dielectric permittivity; dielectric spectroscopy; filler concentration effects; iPP; ionic conduction; isotactic polypropylene matrix; nanocomposite dielectric behaviour; organophilic layered silicate nanofiller; photoluminescence spectroscopy; polypropylene/clay nanocomposites; relaxation process; sPP; space charge accumulation; syndiotactic polypropylene; trapping centers; Dielectric materials; Electrochemical impedance spectroscopy; Nanocomposites; Nanoscale devices; Permittivity; Photoluminescence; Space charge; Stress; Technological innovation; Temperature;
Conference_Titel :
Electrical Insulation and Dielectric Phenomena, 2004. CEIDP '04. 2004 Annual Report Conference on
Print_ISBN :
0-7803-8584-5
DOI :
10.1109/CEIDP.2004.1364269