Pu Zejun, Zheng Xiaoyi, Tian Yuhan, Hu Linqing, Zhong Jiachun
College of Materials Science and Engineering, Sichuan University of Science & Engineering, Zigong 643000, China.
Polymers (Basel). 2017 Nov 10;9(11):596. doi: 10.3390/polym9110596.
In this report, flexible cross-linked polyarylene ether nitrile/functionalized barium titanate(CPEN/F-BaTiO₃) dielectrics films with high permittivitywere prepared and characterized. The effects of both the F-BaTiO₃ and matrix curing on the mechanical, thermal and dielectric properties of the CPEN/F-BaTiO₃ dielectric films were investigated in detail. Compared to pristine BaTiO₃, the surface modified BaTiO₃ particles effectively improved their dispersibility and interfacial adhesion in the polymer matrix. Moreover, the introduction of F-BaTiO₃ particles enhanced dielectric properties of the composites, with a relatively high permittivity of 15.2 and a quite low loss tangent of 0.022 (1 kHz) when particle contents of 40 wt % were utilized. In addition, the cyano (⁻CN) groups of functional layer also can serve as potential sites for cross-linking with polyarylene ether nitrile terminated phthalonitrile (PEN-Ph) matrix and make it transform from thermoplastic to thermosetting. Comparing with the pure PEN-ph film, the latter results indicated that the formation of cross-linked network in the polymer-based system resulted in increased tensile strength by ~67%, improved glass transition temperature () by ~190 °C. More importantly, the CPEN/F-BaTiO₃ composite films filled with 30 wt % F-BaTiO₃ particles showed greater energy density by nearly 190% when compared to pure CPEN film. These findings enable broader applications of PEN-based composites in high-performance electronics and energy storage devices materials used at high temperature.
在本报告中,制备并表征了具有高介电常数的柔性交联聚亚芳基醚腈/功能化钛酸钡(CPEN/F-BaTiO₃)介电薄膜。详细研究了F-BaTiO₃和基体固化对CPEN/F-BaTiO₃介电薄膜的力学、热学和介电性能的影响。与原始BaTiO₃相比,表面改性的BaTiO₃颗粒有效地改善了它们在聚合物基体中的分散性和界面粘附性。此外,F-BaTiO₃颗粒的引入增强了复合材料的介电性能,当使用40 wt%的颗粒含量时,相对介电常数高达15.2,损耗角正切低至0.022(1 kHz)。此外,功能层的氰基(⁻CN)基团还可作为与聚亚芳基醚腈封端的邻苯二甲腈(PEN-Ph)基体交联的潜在位点,使其从热塑性转变为热固性。与纯PEN-ph薄膜相比,后者的结果表明,聚合物基体系中交联网络的形成导致拉伸强度提高了约67%,玻璃化转变温度()提高了约190℃。更重要的是,与纯CPEN薄膜相比,填充30 wt% F-BaTiO₃颗粒的CPEN/F-BaTiO₃复合薄膜的能量密度提高了近190%。这些发现使基于PEN的复合材料在高温下使用的高性能电子和储能器件材料中具有更广泛的应用。