Significantly Improved Energy Storage Density of Polypropylene Nanocomposites via Macroscopic and Mesoscopic Structure Designs

Min-Ki Ji, D. Min, Qingzhou Wu, Rui Mi, Wenfeng Liu, Shengtao Li, Shaorui Qin, Shenglong Zhu
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引用次数: 4

Abstract

Polymer dielectrics with high breakdown strength are very competitively used in the dielectric capacitor, which is widely applied in pulsed power devices and power systems due to their ultra-high power density. The polypropylene (PP) film is the most popularly used polymer for the dielectric capacitor in the market. However, its low energy density cannot meet the emerging demand for miniaturized, compact, and high-energy performance dielectrics. Therefore, it is urgent to raise the energy storage density of the polypropylene film. Here, this study described the improved energy storage density of polypropylene nanocomposites via macroscopic and mesoscopic structure designs. The ABA-structured, BAB-structured, and single-layered nanocomposites were prepared by melting blending and hot-pressing methods, where “A” and “B” films refer to PP/MgO and PP/BaTO3 nanocomposite dielectrics, respectively. Then, the microstructure, dielectric, breakdown, and energy storage properties of these nanocomposite dielectrics were tested. According to the test results, for the sandwich-structured dielectrics, the B layer and the interface between adjacent layers can increase the polarization, and the A layer and the barrier at the interface can reduce the charge mobility. In addition, the sandwich structures can redistribute the electric field. Correspondingly, the breakdown strength and permittivity of PP dielectrics are improved synergistically. Compared to the PP nanocomposite dielectrics with the BAB structure, the dielectric with the ABA structure exhibits more excellent energy storage performance. The largest energy storage density of ABA films with a BaTO3 content of 45 wt% in the B layer is 3.10 J/cm3, which is 67% higher than that of pure PP. The study provides a new concept for improving the energy storage performance of polymer nanocomposite dielectrics from the perspective of macroscopic and mesoscopic structure designs.
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通过宏观和介观结构设计显著提高聚丙烯纳米复合材料的储能密度
高击穿强度的聚合物介电材料在介质电容器中具有很强的竞争力,其超高的功率密度在脉冲功率器件和电力系统中得到广泛应用。聚丙烯(PP)薄膜是目前市场上最常用的介质电容器聚合物。然而,它的低能量密度不能满足人们对微型化、紧凑型和高能量性能电介质的需求。因此,提高聚丙烯薄膜的储能密度是当务之急。本研究通过宏观和介观结构设计来提高聚丙烯纳米复合材料的储能密度。采用熔融共混和热压法制备了aba结构、bab结构和单层纳米复合材料,其中“A”和“B”膜分别为PP/MgO和PP/BaTO3纳米复合电介质。然后,测试了这些纳米复合材料的微观结构、介电性能、击穿性能和储能性能。测试结果表明,对于三明治结构的介质,B层和相邻层之间的界面可以增加极化,而A层和界面处的势垒可以降低电荷迁移率。此外,夹层结构可以重新分配电场。相应的,PP介质的击穿强度和介电常数协同提高。与具有BAB结构的PP纳米复合电介质相比,ABA结构的电介质具有更优异的储能性能。当BaTO3含量为45 wt%时,ABA薄膜在B层的最大储能密度为3.10 J/cm3,比纯PP的储能密度提高了67%。本研究从宏观和介观结构设计的角度为提高聚合物纳米复合电介质的储能性能提供了新的思路。
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