DocumentCode :
1259046
Title :
Covalently modified organic nanoplatelets and their use in polymer film capacitors with high dielectric breakdown and wide temperature operation
Author :
Klein, Robert J. ; Barber, Peter ; Chance, W. Michael ; Loye, Hans-Conrad Zur
Author_Institution :
Luna Innovations Inc., Charlottesville, VA, USA
Volume :
19
Issue :
4
fYear :
2012
fDate :
8/1/2012 12:00:00 AM
Firstpage :
1234
Lastpage :
1238
Abstract :
Organic-inorganic nanoplatelets in the form of nanoscale titanium phenyl phosphonate (nano-Ti(PPA)2) were synthesized with dimensions of 100-250 nm by 5-10 nm. Upon incorporation into fluorene polyester (FPE) at low loadings (0.3 to 3 wt%), the resulting polymer nanocomposite film exhibited significant gains in breakdown field over the neat polymer film, with gains of 37% at 20°C, 39% at 150°C, and 18% at 275°C. The increase in breakdown field was much greater than expected based on previous literature reports for incorporation of spherical SiO2 or TiO2, and it is likely that these benefits arise from the high aspect ratio of the nano-Ti(PPA)2 and the inherent organic functionalization of the material. Dielectric constant was unchanged within experimental error, and loss tangent decreased slightly at higher temperatures, upon the addition of the filler. Material energy densities of the resulting nanocomposite film were calculated to range from 3.6 J/cm3 at 150°C to 1.6 J/cm3 at 275°C, which are the highest known values obtained for a polymer-based capacitor material that can operate at these high temperatures.
Keywords :
capacitors; electric breakdown; nanocomposites; permittivity; polymer films; FPE; covalently modified organic nanoplatelets; dielectric breakdown; dielectric constant; fluorene polyester; nanocomposite film; nanoscale titanium phenyl phosphonate; organic-inorganic nanoplatelets; polymer film capacitors; polymer-based capacitor material; Capacitors; Educational institutions; Electric breakdown; Films; Polymers; Temperature measurement; Capacitor; breakdown field; energy density; nanodielectrics;
fLanguage :
English
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
Publisher :
ieee
ISSN :
1070-9878
Type :
jour
DOI :
10.1109/TDEI.2012.6259996
Filename :
6259996
Link To Document :
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