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Permittivity effects of particle agglomeration in ferroelectric ceramic-epoxy composites using finite element modeling
Author(s) -
Jonas L. Kaufman,
Scott H. Tan,
Kirklann Lau,
Ashka Shah,
Robert G. Gambee,
Chris Gage,
Lupe MacIntosh,
Albert Dato,
Peter N. Saeta,
Richard C. Haskell,
Todd Monson
Publication year - 2018
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.5053442
Subject(s) - dielectric , materials science , composite material , barium titanate , permittivity , particle (ecology) , epoxy , composite number , electric field , ceramic , physics , oceanography , optoelectronics , quantum mechanics , geology
The size dependence of the dielectric constants of barium titanate or other ferroelectric particles can be explored by embedding particles into an epoxy matrix whose dielectric constant can be measured directly. However, to extract the particle dielectric constant requires a model of the composite medium. We compare a finite element model for various volume fractions and particle arrangements to several effective medium approximations, which do not consider particle arrangement explicitly. For a fixed number of particles, the composite dielectric constant increases with the degree of agglomeration, and we relate this increase to the number of regions of enhanced electric field along the applied field between particles in an agglomerate. Additionally, even for dispersed particles, we find that the composite method of assessing the particle dielectric constant may not be effective if the particle dielectric constant is too high compared to the background medium dielectric constant.

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