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An infiltration method for preparing single-wall nanotube/epoxy composites with improved thermal conductivity

机译:一种制备热导率提高的单壁纳米管/环氧树脂复合材料的渗透方法

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摘要

Recent studies of SWNT/polymer nanocomposites identify the large interfacial thermal resistance at nanotube/nanotube junctions as a primary cause for the only modest increases in thermal conductivity relative to the polymer matrix. To reduce this interfacial thermal resistance, we prepared a freestanding nanotube framework by removing the polymer matrix from a 1 wt % SWNT/PMMA composite by nitrogen gasification and then infiltrated it with epoxy resin and cured. The SWNT/epoxy composite made by this infiltration method has a micron-scale, bicontinuous morphology and much improved thermal conductivity (220% relative to epoxy) due to the more effective heat transfer within the nanotube-rich phase. By applying a linear mixing rule to the bicontinuous composite, we conclude that even at high loadings the nanotube framework more effectively transports phonons than well-dispersed SWNT bundles. Contrary to the widely accepted approaches, these findings suggest that better thermal and electrical conductivities can be accomplished via heterogeneous distributions of SWNT in polymer matrices.
机译:SWNT /聚合物纳米复合材料的最新研究表明,在纳米管/纳米管连接处的界面热阻较大,是相对于聚合物基体导热率仅适度增加的主要原因。为了降低这种界面热阻,我们通过氮气化从1 wt%的SWNT / PMMA复合材料中除去聚合物基质,然后用​​环氧树脂渗透并固化,从而制备了独立的纳米管骨架。通过这种渗透方法制得的SWNT /环氧树脂复合材料具有微米级的双连续形态,并且由于在富含纳米管的相中更有效的传热,导热性大大提高(相对于环氧树脂为220%)。通过对双连续复合材料应用线性混合规则,我们得出的结论是,即使在高负荷下,纳米管骨架也比分散良好的SWNT束更有效地传输声子。与广泛接受的方法相反,这些发现表明,可以通过聚合物基质中SWNT的不均匀分布来实现更好的导热性和导电性。

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