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首页> 外文期刊>Composites Science and Technology >Percolation behavior of electromagnetic interference shielding in polymer/multi-walled carbon nanotube nanocomposites
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Percolation behavior of electromagnetic interference shielding in polymer/multi-walled carbon nanotube nanocomposites

机译:电磁干扰屏蔽在聚合物/多壁碳纳米管纳米复合材料中的渗透行为

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摘要

Percolation behavior of electrical conduction that is related to the formation of conductive networks has been well demonstrated in conductive polymer composites (CPC). However, the electromagnetic interference (EMI) shielding of CPC is normally very low at the percolation threshold due to the different mechanism. Here, we first predicted the percolation behavior of EMI shielding existing in CPC because the EMI shielding effectiveness (SE) was mainly dependent on the conductivity of CPC if assuming the constantly magnetic permeability. In practice, we also found the percolation behavior of EMI shielding in the multi-walled carbon nanotube (MWCNT) filled poly(l-lactide) (PLLA) with good dispersion and isotactic polypropylene (iPP) with poor dispersion. Furthermore, the percolation threshold of EMI shielding was higher than the percolation threshold of electrical conduction. The percolation thresholds of EMI shielding and electrical conduction were ∼2.00 and ∼0.40 vol% for PLLA/MWCNT nanocomposites, and ∼5.40 and ∼1.40 vol% for iPP/MWCNT nanocomposites, respectively. The SEM and TEM image shows the sparse and dense MWCNT network near the percolation threshold of electrical conduction and EMI shielding, respectively, indicating that the sparse network of MWCNT can create high electrical conductivity as long as the formation of conductive paths. However, the high performance EMI shielding requires dense network of MWCNT.
机译:与导电网络形成有关的导电渗透行为已在导电聚合物复合材料(CPC)中得到了充分证明。但是,由于机制不同,CPC的电磁干扰(EMI)屏蔽通常在渗透阈值处非常低。在这里,我们首先预测CPC中存在的EMI屏蔽的渗透行为,因为如果假设恒定的磁导率,则EMI屏蔽效率(SE)主要取决于CPC的电导率。在实践中,我们还发现具有良好分散性的多壁碳纳米管(MWCNT)填充的聚(l-丙交酯)(PLLA)和具有较差分散性的等规聚丙烯(iPP)的EMI屏蔽的渗透行为。此外,EMI屏蔽的渗透阈值高于电导的渗透阈值。对于PLLA / MWCNT纳米复合材料,EMI屏蔽和导电的渗透阈分别为〜2.00和〜0.400.4vol%,对于iPP / MWCNT纳米复合物,分别为〜5.40和〜1.40 vol%。 SEM和TEM图像分别显示出接近导电和EMI屏蔽渗透阈值的稀疏和密集MWCNT网络,表明MWCNT的稀疏网络可以形成高电导率,只要形成导电路径即可。但是,高性能EMI屏蔽需要密集的MWCNT网络。

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