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Size effects of graphene nanoplatelets on the properties of high-density polyethylene nanocomposites: morphological thermal electrical and mechanical characterization

机译:石墨烯纳米片的尺寸对高密度聚乙烯纳米复合材料性能的影响:形态热电和机械表征

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摘要

High-density polyethylene (HDPE)-based nanocomposites incorporating three different types of graphene nanoplatelets (GnPs) were fabricated to investigate the size effects of GnPs in terms of both lateral size and thickness on the morphological, thermal, electrical, and mechanical properties. The results show that the inclusion of GnPs enhance the thermal, electrical, and mechanical properties of HDPE-based nanocomposites regardless of GnP size. Nevertheless, the most significant enhancement of the thermal and electrical conductivities and the lowest electrical percolation threshold were achieved with GnPs of a larger lateral size. This could have been attributed to the fact that the GnPs of larger lateral size exhibited a better dispersion in HDPE and formed conductive pathways easily observable in scanning electron microscope (SEM) images. Our results show that the lateral size of GnPs was a more regulating factor for the above-mentioned nanocomposite properties compared to their thickness. For a given lateral size, thinner GnPs showed significantly higher electrical conductivity and a lower percolation threshold than thicker ones. On the other hand, in terms of thermal conductivity, a remarkable amount of enhancement was observed only above a certain filler concentration. The results demonstrate that GnPs with smaller lateral size and larger thickness lead to lower enhancement of the samples’ mechanical properties due to poorer dispersion compared to the others. In addition, the size of the GnPs had no considerable effect on the melting and crystallization properties of the HDPE/GnP nanocomposites.
机译:制备了结合了三种不同类型的石墨烯纳米片(GnP)的高密度聚乙烯(HDPE)基纳米复合材料,以研究GnP在横向尺寸和厚度方面对形态,热,电和机械性能的尺寸影响。结果表明,无论GnP大小如何,包含GnP都会增强基于HDPE的纳米复合材料的热,电和机械性能。然而,使用较大的横向尺寸的GnP可以最大程度地提高导热率和导电率,并实现最低的电渗漏阈值。这可能是由于较大的横向尺寸的GnP在HDPE中表现出更好的分散性,并形成了在扫描电子显微镜(SEM)图像中易于观察到的导电路径这一事实。我们的结果表明,与它们的厚度相比,GnPs的横向尺寸是上述纳米复合材料的一个更大的调节因素。对于给定的横向尺寸,较薄的GnPs较厚的GnPs表现出明显更高的电导率和更低的渗滤阈值。另一方面,就热导率而言,仅在一定的填料浓度以上才观察到显着的增强。结果表明,与其他样品相比,由于分散性较差,横向尺寸较小且厚度较大的GnP导致样品的机械性能提高幅度较小。此外,GnP的大小对HDPE / GnP纳米复合材料的熔融和结晶性能没有显着影响。

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