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首页> 外文期刊>RSC Advances >Enhanced thermal conductivity of nanocomposites with MOF-derived encapsulated magnetic oriented carbon nanotube-grafted graphene polyhedra
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Enhanced thermal conductivity of nanocomposites with MOF-derived encapsulated magnetic oriented carbon nanotube-grafted graphene polyhedra

机译:用MOF衍生的包封磁性取向碳纳米管覆盖的石墨烯覆盖物的纳米复合材料的导热性增强

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It remains a challenge to develop highly polymer-based nanocomposite thermal interface materials, which can effectively remove heat developed during the miniaturization of electronic instruments. It has been reported that a large number of graphene-based nanocomposites exhibit excellent performance. However, it is still an issue to construct thermal conductive pathways by orientation arrangements with a low filler volume fraction. Herein, a high-thermal conductivity filler of magnetic carbon nanotube-grafted graphene polyhedra (Co@Co _(3) O _(4) -G) was exploited via the annealing of metal–organic frameworks (ZIF-67). Co@Co _(3) O _(4) -G can improve the thermal conductivity of nanocomposites obviously by forming oriented pathways for phonon transport in an external magnetic field. Therefore, the resulting nanocomposite displayed a high thermal conductivity of 2.11 W m ~(?1) K ~(?1) for only 8.7 vol%, which is 10 times higher than that of the pure epoxy resin. Core-shell magnetic cobalt oxide (Co@Co _(3) O _(4) ) was encapsulated in situ in the nanoarchitecture to avoid falling off. Moreover, the equilibrium molecular dynamics (EMD) simulation verifies that Co@Co _(3) O _(4) -G had high thermal conductivity to effectively improve the heat dissipation of nanocomposites. This strategy provides an approach for developing high-performance thermal management materials and opens up the possibility for the pioneering applications of encapsulated magnetic-oriented thermal conductive fillers.
机译:开发高聚合物基纳米复合材料热界面材料仍然是一项挑战,这可以有效地消除电子仪器小型化期间发育的热量。据报道,大量基于石墨烯的纳米复合材料表现出优异的性能。然而,通过具有低填充体积分数来构建导热途径的问题仍然是构建导热途径。这里,通过金属有机框架(ZIF-67)的退火利用磁性碳纳米管接枝石墨烯PolyheA(CO @ CO_(3)O _(4)-G)的高导热填料。 CO @ CO _(3)O _(4)-G可以通过在外部磁场中形成定向途径来改善纳米复合材料的热导率。因此,所得纳米复合材料仅显示高导热率为2.11Wm〜(α1)K〜(α1),仅为8.7体积%,这比纯环氧树脂高10倍。核 - 壳磁性钴氧化物(CO @ CO _(3)O _(4))在纳米建筑中封装原位以避免掉落。此外,平衡分子动力学(EMD)模拟验证了CO @ CO_(3)O _(4)-g具有高导热率,以有效地改善纳米复合材料的散热。该策略提供了一种用于开发高性能热管理材料的方法,并开辟了封装的磁导热填料的开创性应用的可能性。

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