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Mussel-inspired polydopamine functionalized silicon carbide whisker for PVDF composites with enhanced dielectric performance

  • Xianwu Cao
  • , Wanjing Zhao
  • , Xianjing Gong
  • , Dongli Zhang
  • , Qijun Su
  • , Junwei Zha
  • , Xinmao Yin
  • , Wei Wu*
  • , Robert K.Y. Li
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Dielectric polymer composites with high dielectric constant and low dielectric loss are highly demanded for various types of devices. In this work, the core–shell structured polydopamine functionalized silicon carbide whiskers (SiC@PDA) were successfully synthesized. The presence of PDA effectively suppressed the dielectric loss of PVDF/SiC@PDA composites because it could inhibit the connection between fillers and reduce the interfacial polarity. Moreover, the thicker PDA layer contributed to improving dielectric breakdown strength and reducing AC conductivity of PVDF composites. The insulating PVDF/SiC@PDA-a-30 composite containing 30 wt% of SiC@PDA-a had a dielectric constant of 35.1 while the dielectric loss still maintained as low as 0.037 at 1 KHz. Meanwhile, PVDF/SiC@PDA-a-30 achieved the maximum stress of 58.8 MPa with elongation at break of 17.3% due to PDA layer improved the compatibility between SiC@PDA and PVDF. This simple coated PDA shell strategy could be extended to inorganic fillers to develop high performance dielectric polymer composites.
Original languageEnglish
Article number106486
JournalComposites Part A: Applied Science and Manufacturing
Volume148
Online published27 May 2021
DOIs
Publication statusPublished - Sept 2021

Research Keywords

  • Dielectric
  • Mechanical property
  • Polydopamine
  • Silicon carbide
  • Thermal stability

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