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Mechanically Enhanced Electrical Conductivity of Polydimethylsiloxane-Based Composites by a Hot Embossing Process

机译:通过热压花工艺机械增强聚二甲基硅氧烷基复合材料的导电性

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摘要

Electrically conductive polymer composites are in high demand for modern technologies, however, the intrinsic brittleness of conducting conjugated polymers and the moderate electrical conductivity of engineering polymer/carbon composites have highly constrained their applications. In this work, super high electrical conductive polymer composites were produced by a novel hot embossing design. The polydimethylsiloxane (PDMS) composites containing short carbon fiber (SCF) exhibited an electrical percolation threshold at 0.45 wt % and reached a saturated electrical conductivity of 49 S/m at 8 wt % of SCF. When reducing the sample thickness from 1.0 to 0.1 mm by the hot embossing process, a compression-induced percolation threshold occurred at 0.3 wt %, while the electrical conductivity was further enhanced to 378 S/m at 8 wt % SCF. Furthermore, the addition of a second nanofiller of 1 wt %, such as carbon nanotube or conducting carbon black, further increased the electrical conductivity of the PDMS/SCF (8 wt %) composites to 909 S/m and 657 S/m, respectively. The synergy of the densified conducting filler network by the mechanical compression and the hierarchical micro-ano-scale filler approach has realized super high electrically conductive, yet mechanically flexible, polymer composites for modern flexible electronics applications.
机译:导电聚合物复合材料对现代技术的需求很高,但是,导电共轭聚合物的固有脆性和工程聚合物/碳复合材料的适度导电性极大地限制了它们的应用。在这项工作中,通过新颖的热压花设计生产了超高导电聚合物复合材料。包含短碳纤维(SCF)的聚二甲基硅氧烷(PDMS)复合材料表现出0.45wt%的电渗透阈值,并且在8wt%的SCF下达到49S / m的饱和电导率。当通过热压花工艺将样品厚度从1.0 mm减小到0.1 mm时,在0.3 wt%时会发生压缩引起的渗滤阈值,而在8 wt%SCF时电导率会进一步提高到378 S / m。此外,添加1 wt%的第二纳米填料(例如碳纳米管或导电炭黑)进一步将PDMS / SCF(8 wt%)复合材料的电导率分别提高到909 S / m和657 S / m。 。通过机械压缩和分层的微米/纳米级填充剂方法,致密的导电填充剂网络的协同作用已实现了超高导电性,但具有机械柔性的聚合物复合材料,适用于现代柔性电子应用。

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