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界面改性和双轴拉伸对聚(对苯二甲酸乙二酯)/聚(偏氟乙烯-共-六氟丙烯)多层膜介电性能的影响。

Effects of Interphase Modification and Biaxial Orientation on Dielectric Properties of Poly(ethylene terephthalate)/Poly(vinylidene fluoride-co-hexafluoropropylene) Multilayer Films.

机构信息

Center for Layered Polymeric Systems (CLiPS) and Department of Macromolecular Science and Engineering, Case Western Reserve University , Cleveland, Ohio 44106-7202, United States.

Department of Physics, Case Western Reserve University , Cleveland, Ohio 44106-7079, United States.

出版信息

ACS Appl Mater Interfaces. 2016 Jun 1;8(21):13555-66. doi: 10.1021/acsami.6b01287. Epub 2016 May 17.

Abstract

Recently, poly(vinylidene fluoride) (PVDF)-based multilayer films have demonstrated enhanced dielectric properties, combining high energy density and high dielectric breakdown strength from the component polymers. In this work, further enhanced dielectric properties were achieved through interface/interphase modulation and biaxial orientation for the poly(ethylene terephthalate)/poly(methyl methacrylate)/poly(vinylidene fluoride-co-hexafluoropropylene) [PET/PMMA/P(VDF-HFP)] three-component multilayer films. Because PMMA is miscible with P(VDF-HFP) and compatible with PET, the interfacial adhesion between PET and P(VDF-HFP) layers should be improved. Biaxial stretching of the as-extruded multilayer films induced formation of highly oriented fibrillar crystals in both P(VDF-HFP) and PET, resulting in improved dielectric properties with respect to the unstretched films. First, the parallel orientation of PVDF crystals reduced the dielectric loss from the αc relaxation in α crystals. Second, biaxial stretching constrained the amorphous phase in P(VDF-HFP) and thus the migrational loss from impurity ions was reduced. Third, biaxial stretching induced a significant amount of rigid amorphous phase in PET, further enhancing the breakdown strength of multilayer films. Due to the synergistic effects of improved interfacial adhesion and biaxial orientation, the PET/PMMA/P(VDF-HFP) 65-layer films with 8 vol % PMMA exhibited optimal dielectric properties with an energy density of 17.4 J/cm(3) at breakdown and the lowest dielectric loss. These three-component multilayer films are promising for future high-energy-density film capacitor applications.

摘要

最近,基于聚偏二氟乙烯(PVDF)的多层膜已经表现出增强的介电性能,其结合了组成聚合物的高能量密度和高介电击穿强度。在这项工作中,通过界面/相间调制和双轴取向进一步提高了聚对苯二甲酸乙二醇酯/聚甲基丙烯酸甲酯/聚(偏氟乙烯-共-六氟丙烯)[PET/PMMA/P(VDF-HFP)]三层共混膜的介电性能。由于 PMMA 与 P(VDF-HFP)混溶且与 PET 相容,因此应该改善 PET 和 P(VDF-HFP)层之间的界面附着力。对挤出的多层膜进行双轴拉伸会在 P(VDF-HFP)和 PET 中诱导形成高度取向的纤维状晶体,从而改善了与未拉伸膜相比的介电性能。首先,PVDF 晶体的平行取向降低了α 晶体中αc 弛豫的介电损耗。其次,双轴拉伸限制了 P(VDF-HFP)中的非晶相,从而减少了杂质离子的迁移损耗。第三,双轴拉伸在 PET 中诱导出大量刚性非晶相,进一步提高了多层膜的击穿强度。由于改善了界面附着力和双轴取向的协同作用,具有 8vol%PMMA 的 PET/PMMA/P(VDF-HFP)65 层膜表现出最佳的介电性能,在击穿时具有 17.4 J/cm3的能量密度和最低的介电损耗。这些三层共混膜有望在未来的高储能薄膜电容器应用中得到应用。

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