Krause Beate, Kunz Karina, Kretzschmar Bernd, Kühnert Ines, Pötschke Petra
Leibniz-Institut für Polymerforschung Dresden e.V. (IPF), Hohe Str. 6, 01069 Dresden, Germany.
Polymers (Basel). 2020 Dec 15;12(12):2992. doi: 10.3390/polym12122992.
In the present study, melt-mixed composites based of poly (vinylidene fluoride) (PVDF) and fillers with different aspect ratios (carbon nanotubes (CNTs), carbon black (CB)) and their mixtures in composites were investigated whereby compression-molded plates were compared with melt-extruded films. The processing-related orientation of CNTs with a high aspect ratio leads to direction-dependent electrical and mechanical properties, which can be reduced by using mixed filler systems with the low aspect ratio CB. An upscaling of melt mixing from small scale to laboratory scale was carried out. From extruded materials, films were prepared down to a thickness of 50 µm by cast film extrusion under variation of the processing parameters. By combining CB and CNTs in PVDF, especially the electrical conductivity through the film could be increased compared to PVDF/CNT composites due to additional contact points in the sample thickness. The alignment of the fillers in the two directions within the films was deduced from the differences in electrical and mechanical film properties, which showed higher values in the extrusion direction than perpendicular to it.
在本研究中,对基于聚偏二氟乙烯(PVDF)与具有不同长径比的填料(碳纳米管(CNT)、炭黑(CB))及其在复合材料中的混合物的熔融共混复合材料进行了研究,其中将压缩模塑板与熔融挤出薄膜进行了比较。具有高长径比的碳纳米管的加工相关取向导致了与方向相关的电学和力学性能,而使用低长径比的炭黑混合填料体系可以降低这种性能。进行了从小规模到实验室规模的熔融共混放大实验。通过在不同加工参数下进行流延膜挤出,从挤出材料制备出厚度低至50 µm的薄膜。通过在PVDF中结合CB和CNT,与PVDF/CNT复合材料相比,由于样品厚度内有额外的接触点,特别是薄膜的电导率得以提高。从薄膜电学和力学性能的差异推断出薄膜内填料在两个方向上的排列情况,结果表明在挤出方向上的值高于垂直于挤出方向的值。