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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Injection-molded microcellular PLA/graphite nanocomposites with dramatically enhanced mechanical and electrical properties for ultra-efficient EMI shielding applications
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Injection-molded microcellular PLA/graphite nanocomposites with dramatically enhanced mechanical and electrical properties for ultra-efficient EMI shielding applications

机译:注塑模塑微孔PLA /石墨纳米复合材料,具有显着增强的机电性能,用于超高效的EMI屏蔽应用

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High-performance EMI shielding materials with renewable characteristics are needed to address the issue of electromagnetic radiation pollution. The use of traditional metal-based EMI shielding materials is limited by their high density, corrosiveness, and expensive processing costs. At the same time, using regular fossil-fuel-driven conductive polymer composite-based EMI shielding materials creates environmental pollution, exacerbates resource consumption, and offers poor electromagnetic shielding effectiveness. Moreover, most of the processing methods used for conductive polymer composite-based EMI shielding materials are focused on a batch-scale process, which cannot easily be scaled up. We studied a sustainable foam injection molding-based method to efficiently fabricate renewable microcellular PLA/graphite nanocomposite foams, with improved mechanical and electrical properties for ultra-efficient EMI shielding applications. A microcellular PLA/graphite nanocomposite foam, with a density of 0.7 g cm(-3) and a thickness of 2.0 mm, exhibits an outstanding EMI shielding performance with a total electromagnetic interference shielding effectiveness (EMI SE) of up to 45 dB. More importantly, thanks to the reduced reflection, which resulted from the strong thin-film interference effect, this lightweight porous nanocomposite foam has an absorption-dominated EMI shielding feature with a radiation energy reflection of less than 15%. The nanographite reorientation, which resulted from foaming, led to the microcellular PLA/graphite nanocomposite foam's electrical conductivity being dramatically increased by almost six orders of magnitude, in relation to the unfoamed sample. Furthermore, the microcellular PLA/graphite nanocomposite foam also exhibited outstanding mechanical properties. These were characterized by a strong specific strength and modulus, and super-ductile fracture behavior. Thus, this lightweight sustainable nanocomposite foam demonstrated great promise as an ultra-efficient EMI shielding material for future use in many applications such as aerospace and electronics.
机译:需要具有可再生特性的高性能EMI屏蔽材料来解决电磁辐射污染问题。使用传统的金属基EMI屏蔽材料受其高密度,腐蚀性和昂贵的加工成本的限制。同时,使用常规化石燃料驱动的导电聚合物复合材料的EMI屏蔽材料会产生环境污染,加剧资源消耗,并提供良好的电磁屏蔽效果。此外,用于导电聚合物复合材料的EMI屏蔽材料的大多数加工方法集中在批量级工艺上,这不能轻易缩放。我们研究了一种可持续的泡沫注塑成型方法,以有效地制造可再生的微孔PLA /石墨纳米复合泡沫,具有改进的机电性能,用于超高效的EMI屏蔽应用。密度为0.7g cm(-3)和2.0mm厚度的微孔PLA /石墨纳米复合泡沫,具有优异的EMI屏蔽性能,具有最高可达45dB的总电磁干扰屏蔽效果(EMI SE)。更重要的是,由于缺乏薄膜干扰效果导致的反射减少,这种轻质多孔纳米复合泡沫具有吸收束缚的EMI屏蔽特征,其辐射能量反射小于15%。由发泡引起的纳米型重新定向导致微孔PLA /石墨纳米复合材料泡沫的电导率与未发泡的样品相关的几乎六个数量级。此外,微孔PLA /石墨纳米复合泡沫也表现出突出的机械性能。这些以强大的特异性强度和模量和超延性断裂行为为特征。因此,这种轻量级可持续的纳米复合材料泡沫证明了作为用于未来在航空航天和电子产品的许多应用中使用的超高效的EMI屏蔽材料。

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