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Effect of graphene nanoplatelets thickness on strain sensitivity of nanocomposites: A deeper theoretical to experimental analysis

机译:石墨烯纳米片厚度对纳米复合材料应变敏感性的影响:从理论到实验分析的更深层次

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Conductive epoxy nanocomposites were prepared using two different thickness graphene nanoplatelets (GNPs) as reinforcement, H25 and M25. In both cases, 3 and 5 wt % GNPs was dispersed into the matrix by means of sonication and calandering processes. The piezoresistive mechanisms of these GNPs/epoxy sensors were studied under tensile and flexural tests. Under tensile loads, H25 nanocomposites, with 15 nm thickness, have a lower sensitivity at low strains and higher at high strains than M25 ones, with 6 nm thickness. This apparently anomalous behavior is explained under the basis of a theoretical model where two types of contacts between GNPs are considered. H25 nanocomposites show a prevalence of type I tunneling mechanisms at low strains and a prevalence of type II contacts at high strains, explaining this more pronounced exponential effect of the electrical resistance. In case of flexural tests, tensile and compressive subjected faces were monitored separately. Lower values of sensitivity than in tensile tests were observed due to the influence of breakage and creation of electrical pathways, showing a similar trend at low and high strains for H25 and M25 nanocomposites.
机译:使用两种不同厚度的石墨烯纳米片(GNP)作为增强材料H25和M25,制备了导电环氧纳米复合材料。在两种情况下,均通过超声处理和压延法将3wt%和5wt%的GNP分散到基质中。在拉伸和弯曲测试下研究了这些GNP /环氧树脂传感器的压阻机理。在拉伸载荷下,厚度为15 nm的H25纳米复合材料在低应变下的灵敏度较低,而在高应变下则比厚度为6 nm的M25纳米复合材料更高。这种明显的异常行为是在理论模型的基础上进行解释的,其中考虑了GNP之间的两种接触。 H25纳米复合材料在低应变时表现出I型隧穿机制的普遍性,而在高应变时表现出II型接触的普遍性,这解释了电阻的这种更为明显的指数效应。在进行弯曲试验时,应分别监测受拉面和受压面。由于断裂和电通路的产生,观察到的灵敏度值低于拉伸试验,在H25和M25纳米复合材料的低应变和高应变下显示出相似的趋势。

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