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Hybrid graphene aerogels/phase change material composites: Thermal conductivity, shape-stabilization and light-to-thermal energy storage

机译:混合石墨烯气凝胶/相变材料复合材料:导热性,形状稳定和光热能存储

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摘要

Hybrid graphene aerogels (HGA) consisting of graphene oxide (GO) and graphene nanoplatelets (GNP) were prepared and introduced into polyethylene glycol (PEG) via vacuum impregnation, aiming at obtaining composite phase change materials (PCMs) with high thermal conductivity, outstanding shape-stabilization, high energy storage density, commendable thermal repeatability and the ability to light-to-heat energy storage. GO nanosheets formed a three-dimensional supporting network to keep the shape of PEG stable during phase change and GNP dispersed uniformity along the network structure of GO and thus a thermal conductive pathway was constructed. The incorporation of HGA remarkably enhanced the thermal conductivity and shape-stabilization of the composite PCMs. The PEG/HGA composite PCM with only ca. 0.45 wt% GO and ca. 1.8 wt% GNP, showed an enhanced thermal conductivity of 1.43 W/mK from 0.31 W/mK of pure PEG and an improvement of 361%, much higher than the improvement that can be achieved by solution or melt blending. Moreover, an energy conversion from light to heat was realized with the composite PCMs. Thus, this work provides a simple, green and environmentally friendly way to achieve simultaneous enhancement of the thermal conductivity, energy storage density and shape-stabilization of PCMs and realize light-to-thermal energy conversion. (C) 2016 Elsevier Ltd. All rights reserved.
机译:制备了由氧化石墨烯(GO)和石墨烯纳米片(GNP)组成的混合石墨烯气凝胶(HGA),并通过真空浸渍将其引入聚乙二醇(PEG)中,旨在获得具有高导热性,出色形状的复合相变材料(PCM) -稳定,高能量存储密度,可赞扬的热重复性和光热能存储能力。 GO纳米片形成了三维支撑网络,以保持PEG的形状在相变过程中保持稳定,并且GNP沿着GO的网络结构分散均匀,从而构建了导热路径。 HGA的加入显着增强了复合PCM的导热性和形状稳定性。 PEG / HGA复合PCM仅约0.45wt%的GO和约。相对于纯PEG 0.31 W / mK,1.8 wt%GNP的导热系数提高了1.43 W / mK,提高了361%,远高于溶液或熔融共混所能达到的提高。此外,通过复合PCM实现了从光到热的能量转换。因此,这项工作提供了一种简单,绿色和环境友好的方式,可以同时提高PCM的导热系数,能量存储密度和形状稳定性,并实现光能转换。 (C)2016 Elsevier Ltd.保留所有权利。

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