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February 24, 20260 citationsOpen Access

Preparation Strategies of V-SiO2@NN Core Shell Structures for the Enhancement of PDCPD Composites

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TZTao ZhangNLNan LiZLZhiyang Luo

Key Points

  • The aim is to enhance the properties of PDCPD composites using a novel V-SiO2@NaNbO3 core-shell structure.
  • Developed a VSN core-shell structure with high vinyl concentration
  • Conducted ring-opening metathesis polymerization
  • Evaluated mechanical, thermal, and dielectric properties of PDCPD composites
  • Heat deflection temperature increased to 139.3 °C
  • Glass transition temperature increased to 150.43 °C
  • Dielectric constant at 1 kHz increased to 4.13 with a dielectric loss of only 0.035%
  • Maintained high mechanical strength and solvent resistance

Abstract

Polydicyclopentadiene (PDCPD), an emerging environmentally friendly material, has been widely applied in lightweight structural shells; however, its extension to high-value electronic applications remains challenging. In this work, we developed a novel vinyl-SiO2@NaNbO3 (VSN) core–shell structure with a high surface vinyl concentration (1.26 mmol/g) and excellent thermal stability, making it highly suitable for co-polymerization with polymers. Through ring-opening metathesis polymerization, the influence of VSN on the mechanical, thermal, and dielectric properties of PDCPD composites was systematically investigated. The vinyl groups on the VSN surface provide strong interfacial compatibility with the PDCPD matrix. With only 1.0 wt% loading, the composites show significant performance improvements: the heat deflection temperature and glass transition temperature increased to 139.3 °C and 150.43 °C, respectively, while the dielectric constant at 1 kHz rises to 4.13 with an ultralow dielectric loss of 0.035%. Meanwhile, the composites maintain high mechanical strength and solvent resistance. This study not only establishes a facile strategy for fabricating highly compatible inorganic additives but also offers new opportunities for expanding PDCPD into advanced dielectric and electronic applications.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699d401ade8e28729cf65181https://doi.org/10.3390/polym18040535
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