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Structure-property-processing investigation of electrically conductive polypropylene nanocomposites

机译:导电聚丙烯纳米复合材料的结构性能处理研究

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This paper investigates the structure-property-processing correlations of electrically conductive polypropylene (PP) nanocomposites. The process parameters and fabrication techniques of PP-based composite materials were studied. Various structures of carbon allotrope-based materials, including synthetic graphite (SG), exfoliated graphene nanoplatelets (xGnP), multi-walled carbon nanotubes (MWCNTs) and carbon black (CB), were used to fabricate the PP-based nanocomposites. The nanocomposites were prepared by either direct melt mixing using an internal mixer or by ball milling of components before the melt mixing process. The electrical and flexural properties were measured. In order to understand the conductivity behavior, both in-plane and through-plane electrical conductivities were measured. The results showed that the incorporation of the xGnP into PP/60 wt.% SG composites resulted in a slight increase of the in-plane conductivities and had a minimal effect on the through-plane conductivities. The addition of MWCNTs and CB to the PP/SG/xGnP composites had a significant effect on the electrical properties and was more pronounced in the case of MWCNTs. The flexural properties of all samples were much lower than those of pure PP. The interface between the filler and the PP matrix and the morphology of the composite materials were observed from the fracture surfaces of the composites using scanning electron microscopy (SEM). In addition, SEM was employed to observe adhesion, microstructural homogeneity, orientation of the xGnP platelets and agglomeration in the composites.
机译:本文研究了导电聚丙烯(PP)纳米复合材料的结构-性能-加工相关性。研究了聚丙烯基复合材料的工艺参数和制备工艺。基于碳同素异形体的材料的各种结构,包括合成石墨(SG),片状石墨烯纳米片(xGnP),多壁碳纳米管(MWCNT)和炭黑(CB),均被用于制造PP基纳米复合材料。通过使用内部混合器直接熔融混合或在熔融混合过程之前通过球磨​​组分来制备纳米复合材料。测量了电和弯曲性能。为了理解电导率行为,测量了平面内和贯穿面的电导率。结果表明,将xGnP掺入PP / 60 wt。%SG复合材料中会使面内电导率略有增加,而对面内电导率的影响最小。将MWCNT和CB添加到PP / SG / xGnP复合材料中对电性能产生重大影响,在MWCNT的情况下更为明显。所有样品的抗弯性能均远低于纯PP。使用扫描电子显微镜(SEM)从复合材料的断裂表面观察填料和PP基体之间的界面以及复合材料的形态。另外,使用SEM观察复合物中的粘附,微结构均匀性,xGnP血小板的取向和附聚。

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