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Metamaterial Behavior of Polymer Nanocomposites Based on Polypropylene/Multi-Walled Carbon Nanotubes Fabricated by Means of Ultrasound-Assisted Extrusion

机译:超声/挤压成型聚丙烯/多壁碳纳米管聚合物纳米复合材料的超材料行为

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摘要

Metamaterial behavior of polymer nanocomposites (NCs) based on isotactic polypropylene (iPP) and multi-walled carbon nanotubes (MWCNTs) was investigated based on the observation of a negative dielectric constant (ε′). It is demonstrated that as the dielectric constant switches from negative to positive, the plasma frequency (ωp) depends strongly on the ultrasound-assisted fabrication method, as well as on the melt flow index of the iPP. NCs were fabricated using ultrasound-assisted extrusion methods with 10 wt % loadings of MWCNTs in iPPs with different melt flow indices (MFI). AC electrical conductivity (σ(AC)) as a function of frequency was determined to complement the electrical classification of the NCs, which were previously designated as insulating (I), static-dissipative (SD), and conductive (C) materials. It was found that the SD and C materials can also be classified as metamaterials (M). This type of behavior emerges from the negative dielectric constant observed at low frequencies although, at certain frequencies, the dielectric constant becomes positive. Our method of fabrication allows for the preparation of metamaterials with tunable ωp. iPP pure samples show only positive dielectric constants. Electrical conductivity increases in all cases with the addition of MWCNTs with the largest increases observed for samples with the highest MFI. A relationship between MFI and the fabrication method, with respect to electrical properties, is reported.
机译:基于负介电常数(ε'),研究了基于等规聚丙烯(iPP)和多壁碳纳米管(MWCNT)的聚合物纳米复合材料(NC)的超材料行为。结果表明,随着介电常数从负向正转换,等离子体频率(ωp)很大程度上取决于超声辅助制造方法以及iPP的熔体流动指数。使用超声辅助挤出方法以不同熔体流动指数(MFI)在iPP中以10 wt%的MWCNT负载量制备NC。确定交流电导率(σ(AC))作为频率的函数,以补充NC的电气分类,这些NC以前被称为绝缘(I),静电耗散(SD)和导电(C)材料。发现SD和C材料也可以归类为超材料(M)。这种类型的行为是由在低频下观察到的负介电常数引起的,尽管在某些频率下介电常数变为正。我们的制造方法允许制备具有可调ωp的超材料。 iPP纯样品仅显示正介电常数。在所有情况下,添加MWCNT的电导率都会增加,对于MFI最高的样品,电导率的增加最大。报道了关于电性能的MFI和制造方法之间的关系。

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