杂化导电填料PMMA纳米复合材料的电导率、渗透阈值及分散性能

P. H. Coelho, A. Morales
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引用次数: 9

摘要

研究了多壁碳纳米管(MWCNT)与炭黑(CB)的混合对原位聚合PMMA纳米复合材料电学性能和分散性能的影响。这些系统被称为混合碳填料填充系统(MCFFS)。采用四点探针测量电导率,并用高分辨透射电镜(HR-TEM)分析色散。研究表明,在PMMA中加入MWCNT和CB,当达到渗透临界浓度时,复合材料的导电性得到了提高。MWCNT和CB的渗透阈值分别为0.2 vol.(%)和1.5 vol.(%),表明这两种填料的差异与它们的几何形状、长宽比和弥散特性有关。此外,还制备了不同填料浓度的MWCNT和CB的MCFFS。为了计算这些系统的理论值并与实验数据进行比较,应用了太阳模型。在电渗流阈值浓度方面观察到协同效应。与单一填料相比,MCFFS具有较低的临界浓度(考虑每个单一填料浓度,MWCNT和CB的总和)和相似的电导率。尽管存在聚集体,但显微镜分析表明,两种填料都很好地分散在聚合物基体中,尽管MWCNT的分散特性比CB更有效。在MCFFS中,MWCNT作为连接CB簇的细丝,这可以解释在较低的渗透阈值浓度下观察到的协同效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrical conductivity, percolation threshold and dispersion properties of PMMA nanocomposites of hybrid conducting fillers
The present study investigated the effects of the mixture of multiwalled carbon nanotubes (MWCNT) and carbon black (CB) on the electrical and dispersion properties of nanocomposites of PMMA polymerized in situ. These systems are named as mixed-carbon-filler filled systems (MCFFS). The electrical conductivity was measured by the four point probe and the dispersion was analyzed by High Resolution Transmission Electron Microscopy (HR-TEM). It has been shown that the addition of MWCNT and CB in PMMA promoted the electrical conductivity of the composite as a percolation critical concentration is reached. The percolation threshold values were 0.2 vol. (%) for MWCNT and 1.5 vol. (%) for CB, showing that this difference for the two fillers was associated with their geometric shapes, aspect ratios and dispersion characteristics. In addition, MCFFS of MWCNT and CB, varying the concentration of each filler were also prepared. For these systems it was applied the Sun model in order to calculate the theoretical values and compare them to the experimental data. It was observed the synergic effect regarding to the electrical percolation threshold concentration. The MCFFS showed lower critical concentrations (considering the sum of each single filler concentration, MWCNT and CB) and similar conductivities as compared to the single fillers. Despite the presence of aggregates, the microscopy analysis showed that both fillers were well dispersed in the polymer matrix, although the dispersion characteristics of the MWCNT were more effective than CB. In the MCFFS the MWCNT act as filaments linking clusters of the CB, what can explain the synergic effect observed for the lower percolation threshold concentration.
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