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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Core-Shell Structured Biopolymer@BaTiO3 Nanoparticles for Biopolymer Nanocomposites with Significantly Enhanced Dielectric Properties and Energy Storage Capability
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Core-Shell Structured Biopolymer@BaTiO3 Nanoparticles for Biopolymer Nanocomposites with Significantly Enhanced Dielectric Properties and Energy Storage Capability

机译:用于生物聚合物纳米复合材料的核-壳结构生物聚合物@ BaTiO3纳米颗粒,具有显着增强的介电性能和储能能力

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Flexible high-dielectric-constant (high-kappa) nanocomposite dielectrics comprising polymer matrix and ceramic nanoparticles have important applications in the fields of electrical insulation and energy storage. However, most of the flexible high-kappa nanocomposites are fabricated by using nonbiodegradable polymers as matrixes, which may not meet the increasing demands of society for environmental sustainability. In this study, using biodegradable polylactic acid (PLA) as a matrix and core-shell structured BaTiO3 (BT) nanoparticles as high-kappa filler, we report the preparation and structure property relationship of environmentally friendly flexible high-kappa polymer nanocomposites. Two types of core shell structured high-kappa nanoparticles [polydopamine-encapsulated BT (BT@PDA) and PLA-encapsulated BT@PDA (BT@PDA@PLA)] as well as as-prepared BT nanoparticles were used as filler of the PLA-based high-kappa nanocomposites. It was found that, compared with the as-prepared BT nanocomposites, the core shell nanoparticle-based composites show enhanced dielectric constant, suppressed dielectric loss tangent, and enhanced breakdown strength. In addition, the BT@PDA@PLA nanocomposites have much higher dielectric constant and energy density. The nanoparticle-PLA compatibility and its influence on the dielectric and energy storage properties of the nanocomposites were also investigated. Because the polymer matrix is environmentally friendly and the preparation process of the core-shell nanoparticles is facile and nontoxic, the nanocomposites reported here may be used in the next generation of environmentally friendly high-performance energy storage devices.
机译:包含聚合物基体和陶瓷纳米粒子的柔性高介电常数(高κ)纳米复合电介质在电绝缘和能量存储领域中具有重要的应用。然而,大多数柔性高κ纳米复合材料是通过使用不可生物降解的聚合物作为基质来制造的,这可能无法满足社会对环境可持续性的日益增长的需求。在这项研究中,以可生物降解的聚乳酸(PLA)为基质,以核-壳结构的BaTiO3(BT)纳米颗粒为高Kappa填料,我们报道了环保型柔性高Kappa聚合物纳米复合材料的制备与结构性能的关系。两种类型的核壳结构高κ纳米粒子[聚多巴胺封装的BT(BT @ PDA)和PLA封装的BT @ PDA(BT @ PDA @ PLA)]以及制备的BT纳米粒子被用作PLA的填充剂的高κ纳米复合材料。发现与制备的BT纳米复合材料相比,基于核壳纳米颗粒的复合材料显示出增强的介电常数,抑制的介电损耗角正切和增强的击穿强度。另外,BT @ PDA @ PLA纳米复合材料具有更高的介电常数和能量密度。还研究了纳米颗粒-PLA的相容性及其对纳米复合材料介电和储能性能的影响。由于聚合物基质对环境友好,并且核-壳纳米颗粒的制备过程简便且无毒,因此本文报道的纳米复合材料可用于下一代环保高性能储能装置。

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