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首页> 外文期刊>RSC Advances >Interface structure, precursor rheology and dielectric properties of BaTiO3/PVDF–hfp nanocomposite films prepared from colloidal perovskite nanoparticles
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Interface structure, precursor rheology and dielectric properties of BaTiO3/PVDF–hfp nanocomposite films prepared from colloidal perovskite nanoparticles

机译:胶态钙钛矿纳米粒子制备的BaTiO 3 / PVDF-hfp纳米复合薄膜的界面结构,前体流变学和介电性能

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摘要

Nanocomposite materials with uniform microstructure and high permittivity have attracted extensive interest in modern electronics. The compatibility between the filler phase and the polymer matrix is crucial in preparing high-performance composites. As an alternative to conventional surface modification treatment methodologies, hydroxylated colloidal BaTiO3 (BT) nanoparticles synthesized via a green and scalable process were directly used to fabricate high-permittivity nanocomposites. Interfacial interaction analyses between the BT nanoparticles and polymer matrix reveals that due to strong hydrogen bonding at the interface, transparent composite sols with excellent flow behavior can be observed. The sols are ideal formulations for the preparation of BT/PVDF–hfp 0–3 nanocomposite films. Owing to the unique interface structure, the composite films show a dense and uniform microstructure and superior dielectric properties. Parallel plate capacitor devices and the co-development of a sandwich architecture leads to the ability to prepare dielectric films with favorable performance characteristics. This method provides a novel and greatly simplified strategy for the fabrication of high-permittivity dielectric nanocomposites.
机译:具有均匀的微观结构和高介电常数的纳米复合材料引起了现代电子学的广泛兴趣。填料相与聚合物基质之间的相容性对于制备高性能复合材料至关重要。作为常规表面改性处理方法的替代方法,将通过绿色和可扩展工艺合成的羟基化胶体BaTiO 3 (BT)纳米颗粒直接用于制备高介电常数的纳米复合材料。 BT纳米粒子与聚合物基质之间的界面相互作用分析表明,由于界面处的强氢键作用,可以观察到具有优异流动性能的透明复合溶胶。该溶胶是制备BT / PVDF–hfp 0–3纳米复合薄膜的理想配方。由于独特的界面结构,复合膜显示出致密且均匀的微观结构和优异的介电性能。平行板电容器器件和三明治结构的共同发展导致能够制备具有良好性能特征的介电膜。该方法为高介电常数介电纳米复合材料的制造提供了一种新颖且大大简化的策略。

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