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Compression-induced electrical percolation and enhanced mechanical properties of polydimethylsiloxane-based nanocomposites

机译:压缩诱导的基于聚二甲基硅氧烷的纳米复合材料的电渗流和增强的力学性能

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摘要

In this work, a compression-induced percolation threshold was found when the thickness of polydimethylsiloxane (PDMS) nanocomposite samples was reduced via a spatial confining forced network assembly (SCFNA) process from 1.0 mm to 0.1 mm. Such as for PDMS/2 wt% short carbon fiber/4 wt% carbon nanotube (CNT) composite, its conductivity was more than 8 times enhanced to 487 S/m from 59.5 S/m, and the mechanical properties of composites have been improved by more than 15% accordingly. Comparatively, when increased the concentration of CNT or Gr from 1 to 4 wt%, the electrical conductivity of PDMS nanocomposites at 1 mm thickness was barely changed as it generally reached saturation and became independent of filler loading. Compared with the traditional blending method, it indicates that the SCFNA process can further promote the maximum electrical conductivity of polymer nanocomposites when the filler concentration has little effect on the conductivity. Especially under the condition of relatively high filler concentration, the electrical conductivity enhancement effect becomes more significant that is contrary to the classical percolation theory. Moreover, the mechanical properties of the nanocomposites can be slightly improved by the mechanical compression, which makes it more suitable for flexible electronic devices' applications.
机译:在这项工作中,当通过空间限制强制网络组件(SCFNA)工艺从1.0mm至0.1mm的空间限制降低,当聚二甲基硅氧烷(PDMS)纳米复合材料样品的厚度降低时,发现了压缩诱导的渗滤阈值。如PDMS / 2wt%短碳纤维/ 4wt%碳纳米管(CNT)复合材料,其电导率大于59.5 s / m的487 s / m增强8倍,复合材料的机械性能得到改善相应地超过15%。相比之下,当增加1至4wt%的CNT或GR的浓度时,在通常达到饱和的情况下几乎没有改变1mm厚的PDMS纳米复合材料的导电性,并且与填充载荷无关。与传统的混合方法相比,当填充浓度对导电性影响不大时,SCFNA工艺可以进一步促进聚合物纳米复合材料的最大电导率。特别是在填充浓度相对高的条件下,导电性增强效果变得更显着,这与经典渗透理论相反。此外,通过机械压缩可以略微提高纳米复合材料的机械性能,这使得更适合于灵活的电子设备的应用。

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