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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Biomass-based honeycomb-like architectures for preparation of robust carbon foams with high electromagnetic interference shielding performance
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Biomass-based honeycomb-like architectures for preparation of robust carbon foams with high electromagnetic interference shielding performance

机译:基于生物质的蜂窝状架构,用于制备具有高电磁干扰屏蔽性能的强大碳泡沫

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Honeycomb-like lignin-derived carbon (LC) foams doped with reduced graphene oxide (RGO) are fabricated via unidirectional ice-templating followed by freeze-drying and carbonization. The dimensions, constituent contents, and density of the foams could be easily adjusted. By manipulating the density, high electrical conductivity and good mechanical properties could be achieved at relatively low RGO contents. In addition to the high conductivity and interfaces between LC and RGO, aligned pores also boost electromagnetic interference (EMI) shielding effectiveness (SE) of the foams owing to induced multiple reflections. X-band EMI SE of the LC-based foams with 2-mm thickness could reach 28.5-70.5 dB at very low densities. Furthermore, the normalized surface specific SE (SE divided by density and thickness) could be as high as 28750 dB cm(2)/g, which is much higher than those of other types of carbon foams and most shielding materials ever reported. With the outstanding EMI shielding performance, good mechanical properties and more sustainable raw material, the biomass-based carbon foams offer promising prospects for lightweight, robust and high-performance EMI shielding materials. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过单向冰模板掺杂掺杂掺杂有稀土氧化物(RGO)的蜂窝木质素衍生的碳(LC)泡沫,然后通过单向冰模板进行制造,然后进行冷冻干燥和碳化。泡沫的尺寸,组成内容物和密度可以容易地调节。通过操纵密度,可以在相对低的rgo含量下实现高导电性和良好的机械性能。除了LC和RGO之间的高电导率和界面之外,由于诱导多次反射,对准孔隙还促进泡沫的电磁干扰(EMI)屏蔽效果(SE)。具有2毫米厚度的LC基泡沫的X频带EMI SE可以在非常低密度达到28.5-70.5dB。此外,归一化表面特异性Se(SE除以密度和厚度)可以高达28750dB(2)/ g,其远高于其他类型的碳泡沫和迄今为止最多的屏蔽材料。凭借出色的EMI屏蔽性能,良好的机械性能和更可持续的原料,基于生物质的碳泡沫为轻质,强大,高性能EMI屏蔽材料提供了有希望的前景。 (c)2018年elestvier有限公司保留所有权利。

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