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Multiscale Structural Modulation of Anisotropic Graphene Framework for Polymer Composites Achieving Highly Efficient Thermal Energy Management

机译:聚合物复合材料各向异性石墨烯框架的多尺度结构调节实现高效热能管理

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摘要

Graphene is usually embedded into polymer matrices for the development of thermally conductive composites, preferably forming an interconnected and anisotropic framework. Currently, the directional self‐assembly of exfoliated graphene sheets is demonstrated to be the most effective way to synthesize anisotropic graphene frameworks. However, achieving a thermal conductivity enhancement (TCE) over 1500% with per 1 vol% graphene content in polymer matrices remains challenging, due to the high junction thermal resistance between the adjacent graphene sheets within the self‐assembled graphene framework. Here, a multiscale structural modulation strategy for obtaining highly ordered structure of graphene framework and simultaneously reducing the junction thermal resistance is demonstrated. The resultant anisotropic framework contributes to the polymer composites with a record‐high thermal conductivity of 56.8–62.4 W m−1 K−1 at the graphene loading of ≈13.3 vol%, giving an ultrahigh TCE per 1 vol% graphene over 2400%. Furthermore, thermal energy management applications of the composites as phase change materials for solar‐thermal energy conversion and as thermal interface materials for electronic device cooling are demonstrated. The finding provides valuable guidance for designing high‐performance thermally conductive composites and raises their possibility for practical use in thermal energy storage and thermal management of electronics.
机译:石墨烯通常嵌入聚合物基质中,用于显影导热复合材料,优选地形成互连和各向异性框架。目前,去角化石墨烯片的定向自组装被证明是合成各向异性石墨烯框架的最有效方法。然而,由于在自组装的石墨烯框架内的相邻石墨烯片之间的高结热阻,在聚合物基质中获得超过1500%的导热性增强(TCE)仍然是具有挑战性的。这里,证明了用于获得高度有序结构的石墨烯框架结构的多尺度结构调制策略和同时降低结射线热阻。所得的各向异性框架在石墨烯负载量为≈13.3体积%的石墨烯负载下有助于具有56.8-62.4Wm-1 k-1的高热导电性的聚合物复合材料。超过2400%,使超高的TCE为每1 Vol%石墨烯。此外,证明了复合材料作为太阳能电能转换的相变材料的热能管理应用以及作为电子设备冷却的热界面材料。该发现为设计高性能导热复合材料提供了有价值的指导,并提高了它们在热能储存和电子热管理中的实际应用的可能性。

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