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首页> 外文期刊>RSC Advances >Enhanced breakdown strength and suppressed dielectric loss of polymer nanocomposites with BaTiO3 fillers modified by fluoropolymer
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Enhanced breakdown strength and suppressed dielectric loss of polymer nanocomposites with BaTiO3 fillers modified by fluoropolymer

机译:用含氟聚合物改性的BATIO3填料增强了聚合物纳米复合材料的击穿强度和抑制介电损失

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The introduction of ceramic fillers into a polymer matrix is an effective way to obtain dielectric nanocomposites with high energy storage density. However, the inorganic fillers are difficult to disperse evenly into the polymer matrix because of the poor compatibility, which stems from the large surface energy difference and the mismatch in dielectric constant between the fillers and polymer matrix. Polymer nanocomposites with high dielectric constant while maintaining high breakdown strength have great potential to achieve high energy storage density. In this work, poly(dodecafluoroheptyl methacrylate) terminated with a thiol end group (PDFMA-SH) was synthesized via a two-step process including Reversible Addition-Fragmentation Chain Transfer (RAFT) polymerization and subsequent aminolysis reaction. The polymer was then grafted into the surface of BaTiO _(3) (BT) nanoparticles by a “thiol–ene” click reaction to reduce the surface energy of BT nanoparticles. A novel nanocomposite consisted of the core–shell structured PDFMA@BT hybrid nanoparticles and poly(vinylidene fluoride–chlorotrifluoroethylene) (P(VDF–CTFE)) matrix was prepared. The influence of the fluoropolymer shell on the dispersion of fillers, the compatibility between the fillers and polymer matrix, dielectric properties and breakdown strength were investigated systematically. The results indicate that the strong interfacial adhesion between the hybrid nanoparticles and P(VDF–CTFE) matrix makes the fillers uniformly dispersed in the polymer matrix. Meanwhile, the excellent compatibility between the two components is favorable for enhancing the breakdown strength and suppressing dielectric loss, providing a condition to prepare dielectric materials with high energy storage density.
机译:将陶瓷填料引入聚合物基质是获得具有高能量储存密度的介电纳米复合材料的有效方法。然而,由于较差的相容性,无机填料难以均匀地分散到聚合物基质中,其源于填充剂和聚合物基质之间的大表面能差和介电常数中的介电常数不匹配。具有高介电常数的聚合物纳米复合材料,同时保持高击穿强度具有巨大的潜力,以实现高能量储存密度。在这项工作中,通过两步方法合成终止用硫醇端基(PDFMA-SH)的聚(十二烷氟庚基),包括可逆添加 - 碎片链转移(筏)聚合和随后的氨基溶解反应。然后将聚合物接枝到BATIO _(3)(BT)纳米颗粒的表面上,单击反应以减少BT纳米颗粒的表面能。一种新型纳米复合材料由核 - 壳结构的PDFMA @ BT杂交纳米颗粒和聚(偏二氟乙烯 - 氯三氟乙烯)(p(VDF-CTFE))制备基质。含氟聚合物壳对填料分散的影响,系统地研究了填料和聚合物基质之间的相容性,介电性能和击穿强度。结果表明,杂交纳米粒子和P(VDF-CTFE)基质之间的强界面粘附使填料均匀地分散在聚合物基质中。同时,两个部件之间的优异相容性有利于增强击穿强度和抑制介电损耗,提供具有高能量存储密度的介电材料的条件。

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