State Key Laboratory of Power System, Department of Electrical Engineering, Tsinghua University, Beijing, 100084, China.
School of Electrical Engineering, Zheng Zhou University, Zhengzhou, Henan, 450001, China.
Macromol Rapid Commun. 2021 Jun;42(12):e2100116. doi: 10.1002/marc.202100116. Epub 2021 May 3.
Polymer-based film capacitors with high breakdown strength and excellent flexibility are crucial in the field of advanced electronic devices and electric power systems. Although massive works are carried to enhance the energy storage performances, it is still a great challenge to improve the energy density of polymer composites under the premise of large-scale industrial production. Herein, a general strategy is proposed to improve the intrinsic breakdown strength and energy storage performances by blending core-shell structured methyl methacrylate-butadiene-styrene (MBS) rubber particles into a polymer matrix. Good compatibility and uniform dispersion state of MBS particles are observed in the matrix. Polarizing microscopy images show that blended films exhibit clear reduction of crystalline grains with the addition of MBS particles. Accordingly, an increased breakdown strength of 515 MV m and discharged energy density of 12.33 J cm are observed in poly(vinylidene fluoride-co-hexafluoropropylene)-based composite films. Through comprehensive characterizations, it is believed that the superior energy storage performance of composite films is attributed to decreased crystalline grains, improved mechanical properties, and restriction on carrier motion. These results provide a novel design of dielectric polymers for high breakdown strength and discharged energy density applications.
具有高击穿强度和优异柔韧性的聚合物基薄膜电容器在先进电子设备和电力系统领域至关重要。尽管已经进行了大量工作来提高储能性能,但在大规模工业生产的前提下,仍然是一个巨大的挑战,需要提高聚合物复合材料的能量密度。本文提出了一种通用策略,通过将核壳结构的甲基丙烯酸甲酯-丁二烯-苯乙烯(MBS)橡胶颗粒共混到聚合物基体中,来提高聚合物的内在击穿强度和储能性能。在基体中观察到 MBS 颗粒具有良好的相容性和均匀的分散状态。偏光显微镜图像表明,随着 MBS 颗粒的加入,共混膜的结晶晶粒明显减少。因此,在聚(偏二氟乙烯-六氟丙烯)基复合膜中观察到击穿强度提高了 515 MV m,能量密度提高到 12.33 J cm。通过综合表征,认为复合膜具有优越的储能性能,归因于结晶晶粒的减少、力学性能的提高以及对载流子运动的限制。这些结果为高击穿强度和放电能量密度应用提供了一种新型介电聚合物的设计思路。