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Thermal conductivity of 2D nano-structured graphitic materials and their composites with epoxy resins

机译:二维纳米结构石墨材料及其与环氧树脂的复合材料的热导率

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摘要

Abstract The outstanding thermal conductivity (λ) of graphene and its derivatives offers a potential route to enhance the thermal conductivity of epoxy resins. Key challenges still need to be overcome to ensure effective dispersion and distribution of 2D graphitic fillers throughout the epoxy matrix. 2D filler type, morphology, surface chemistry and dimensions are all important factors in determining filler thermal conductivity and de facto the thermal conductivity of the composite material. To achieve significant enhancement in the thermal conductivity of epoxy composites, different strategies are required to minimise phonon scattering at the interface between the nano-filler and epoxy matrix, including chemical functionalisation of the filler surfaces such that interactions between filler and matrix are promoted and interfacial thermal resistance (ITR) reduced. The combination of graphitic fillers with dimensions on different length scales can potentially form an interconnected multi-dimensional filler network and, thus contribute to enhanced thermal conduction. In this review, we describe the relevant properties of different 2D nano-structured graphitic materials and the factors which determine the translation of the intrinsic thermal conductivity of these 2D materials to epoxy resins. The key challenges and perspectives with regard achieving epoxy composites with significantly enhanced thermal conductivity on addition of 2D graphitic materials are presented.
机译:摘要石墨烯及其衍生物的出色的导热系数(λ)为增强环氧树脂的导热系数提供了一条潜在途径。为了确保2D石墨填料在整个环氧基质中的有效分散和分布,仍需要克服关键挑战。 2D填料的类型,形态,表面化学性质和尺寸都是决定填料导热系数以及事实上决定复合材料导热系数的重要因素。为了显着提高环氧复合材料的导热性,需要采取不同的策略来最小化纳米填料与环氧基质之间界面处的声子散射,包括填料表面的化学官能化,从而促进填料与基质之间的相互作用和界面热阻(ITR)降低。具有不同长度尺度的尺寸的石墨填料的组合可以潜在地形成互连的多维填料网络,并因此有助于增强的热传导。在这篇综述中,我们描述了不同的2D纳米结构石墨材料的相关特性,以及决定这些2D材料的固有热导率向环氧树脂转化的因素。介绍了在添加2D石墨材料后实现导热性显着提高的环氧复合材料的关键挑战和前景。

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