Investigation into ameliorative dielectric properties of silicon/poly(vinylidene fluoride) composites by engineering insulating aluminum oxide shell as an interlayer

Author:

Lin Na1,Yin Ronghua1,Zhou Wenying1ORCID,Zhang Mengyuan1,Kong Fanrong1,Gong Ming1,Lei Xiaoyan1,Cao Zichen1,Di‐wu Jingyu1,Li Weiwei1,Zhao Yingying2

Affiliation:

1. School of Chemistry and Chemical Engineering Xi'an University of Science & Technology Xi'an China

2. School of Materials Science and Engineering Xi'an University of Science & Technology Xi'an China

Abstract

AbstractFlexible electronic materials with high‐dielectric constant (ɛ) and breakdown strength (Eb) but low loss is pursued. Encapsulation of conductive fillers with various insulating shells represents a promising strategy to inhibit dielectric loss or leakage current. In this work, aluminum oxide (Al2O3) encapsulated silicon (Si) core‐shell structured particles were prepared through a sol–gel approach, and then were incorporated with poly(vinylidene fluoride) (PVDF). The dielectric properties of PVDF composites with various fillers are investigated under varying frequencies. The findings demonstrate that a Al2O3 shell was formed outside the original Si, and that the Si@Al2O3/PVDF exhibit a high ɛ and elevated Eb but signally suppressive loss and restrained conductivity when compared with raw Si. The Al2O3 interlayer not only enhances the interface compatibility between the filler and the matrix and promotes interface polarizations, but also suppresses the loss and leakage current through preventing adjacent Si from directly contacting. The optimized dielectric performances can be achieved via tailoring the Al2O3 shell thickness. Furthermore, the theoretic fitting of experimental results by the Havriliak‐Negami equation deciphers the Al2O3 interlayer’ impact on the polarization mechanism. The resulting Si@Al2O3/PVDF composites with high ε but low loss, as well as boosted Eb, reveal potential applications in electrical systems.

Funder

Innovative Research Group Project of the National Natural Science Foundation of China

Natural Science Foundation of Shanxi Province

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Surfaces, Coatings and Films,General Chemistry

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