首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Enhanced dielectric property and energy density in poly(vinylidene fluoride-chlorotrifluoroethylene) nanocomposite incorporated with graphene functionalized with hyperbranched polyethylene-graft-poly(trifluoroethyl methacrylate) copolymer
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Enhanced dielectric property and energy density in poly(vinylidene fluoride-chlorotrifluoroethylene) nanocomposite incorporated with graphene functionalized with hyperbranched polyethylene-graft-poly(trifluoroethyl methacrylate) copolymer

机译:增强聚(偏二氟乙烯 - 氯三氟乙烯)纳米复合材料中的介电性能和能量密度掺入与超支化聚乙烯 - 移植 - 聚(三氟乙基甲基丙烯酸三丙烯酸甲酯)共聚物官能化的石墨烯

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摘要

Polymer film capacitors are attractive as promising candidates for potential applications in compact and efficient electric power systems. The development of a method for producing a polymer nanocomposite with enhanced dielectric property and a high energy density is a fundamental solution for electric storage in a film capacitor. In this work, a hyperbranched polyethylene-graft-poly(trifluoroethyl methacrylate) (HBPE-g-PTFEMA) copolymer was synthesized to exfoliate and functionalize graphene from natural graphite in chloroform on the basis of the CH-pi non-covalent stacking between the HBPE-g-PTFEMA stabilizer and graphene. Examination of the morphologies by transmission electron microscopy (TEM) and atomic force microscopy (AFM) confirmed that the resulting graphene had a lateral size of 0.2-0.6 mu m and a thickness of around 4 layers. The presence of peaks due to F in the X-ray photoelectron spectroscopy (XPS) spectra of graphene indicates that the fluorinated copolymer was attached to the surface of nanosheets. Few-layer graphene was introduced into a poly(vinylidene fluoride-chlorotrifluoroethylene) (P(VDF-CTFE)) matrix via simple solution casting. The relative content of the electroactive phase in the nanocomposite film increased because the phase transition from the alpha- to the beta-phase was induced by the addition of graphene. The dielectric constant increased to 24.8 with a low dielectric loss of 0.06 at 100 Hz for a 0.8 vol% nanocomposite, and a released energy density of 4.6 J cm(-3) with a charge-discharge efficiency of 62% at 250 MV m(-1) was achieved with a 0.1 vol% nanocomposite, which was attributed to the combination of the large content of the electroactive phase and interfacial polarization. This strategy based on a nanocomposite with graphene exfoliated by a fluoropolymer sheds light on the mechanism of interfacial polarization and exhibits commendable prospects for applications in flexible film capacitors.
机译:聚合物薄膜电容器作为具有紧凑高效电力系统中的潜在应用的承诺候选者具有吸引力。通过增强介电性能的聚合物纳米复合材料的制造方法的发展是薄膜电容器中蓄电的基本解决方案。在这项工作中,合成了一种超支化聚乙烯 - 移植物 - 聚(三氟甲基甲基丙烯酸甲酯)(HBPE-G-PTFEMA)共聚物,以基于HBPE之间的CH-PI非共价堆叠在氯仿中的天然石墨中剥离和官能化石墨烯-G-PTFEMA稳定剂和石墨烯。通过透射电子显微镜(TEM)和原子力显微镜(AFM)的形态检查证实,所得石墨烯的横向尺寸为0.2-0.6μm,厚度约为4层。由于X射线光电子能谱(XPS)的X射线光电子能谱(XPS)光谱的存在峰值表明氟化共聚物附着在纳米晶片表面上。通过简单的溶液浇铸将几层石墨​​烯引入聚(偏二氟乙烯 - 氯丁二氟乙烯)(P(VDF-CTFE))基质中。纳米复合膜中的电活性相的相对含量增加,因为通过加入石墨烯来诱导从α-β相的相转变。介电常数增加到24.8,低介电损耗为0.06,100Hz为0.8Vol%纳米复合材料,电荷放电效率为4.6J厘米(-3)的释放能量密度为250mVm(用0.1Vol%纳米复合材料实现-1),其归因于电活性相和界面极化的大含量的组合。该策略基于纳米复合材料的含石墨烯通过含氟聚合物脱落的界面极化机理,并且在柔性薄膜电容器中表现出可称赞的应用前景。

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