Information thermodynamics of ternary fractal material texture: Application to BaTiO3/β-Si3N4/polyvinylidene fluoride composites

F Fumio Munakata (Department of Applied Chemistry, Tokyo City University 6 , Setagaya-ku, Tokyo 158-8557,) T Taito Ogiya (Graduate School of Integrative Science and Engineering Applied Chemistry, Tokyo City University 1 , 1-28-1 Tamatsutsumi, Setagaya-ku, Tokyo 158-8557,) Y Yoshihiro Sato (Division of Applied Chemistry, Graduate School of Environmental, Life, Natural Science and Technology) S Suguru Kitani H Hitoshi Kawaji

Abstract

The thermodynamic information characteristics of fractal material structures, fabricated via a self-organization process, were analyzed using a ternary BaTiO3 (BT)/β-Si3N4 (SN)/polyvinylidene fluoride (PVDF) composite, notable for its combined thermal conductivity and dielectric properties. BT/SN/PVDF composites were prepared using (a) lamination, where prefabricated BT/PVDF and SN/PVDF melt sheets were alternately folded, and (b) simple mixing and kneading. To investigate the relationship between the materialographic characteristics and the material properties (dielectric properties and thermal conductivity) of self-assembled/self-organized fractal structures formed through the mixed diffusion of filler particles, the distribution of filler particle populations was analyzed via multifractal analysis. The resulting composite film texture was found to be process-independent, demonstrating a distinct microstructure where SN and BT formed separate aggregates. Notably, the mutual information, I, calculated using the information dimension D±1, revealed a strong correlation between the two filler particle groups. This indicates that like particles were attracted, while unlike particles were repelled, suggesting that the two fillers exist separately. These results suggest SN aggregates form a thermal conductive network, and BT aggregates contribute to high dielectric properties, each enhancing specific material properties. This study proposes a pathway to construct materials with independently controlled properties, offering a new design approach for multifunctional materials.

Article Details

Volume / Issue Vol. 137, Issue 11
Published March 21, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (5)

F

Fumio Munakata

Department of Applied Chemistry, Tokyo City University 6 , Setagaya-ku, Tokyo 158-8557,

T

Taito Ogiya

Graduate School of Integrative Science and Engineering Applied Chemistry, Tokyo City University 1 , 1-28-1 Tamatsutsumi, Setagaya-ku, Tokyo 158-8557,

Y

Yoshihiro Sato

Division of Applied Chemistry, Graduate School of Environmental, Life, Natural Science and Technology

S

Suguru Kitani

H

Hitoshi Kawaji