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用于热能存储的具有可控各向同性热导率的柔性复合固-固相变材料的分子调控

Molecular Regulation of Flexible Composite Solid-Solid Phase Change Materials with Controllable Isotropic Thermal Conductivity for Thermal Energy Storage.

作者信息

Tian Chong, Yang Yunyun, Liu Qiang, Bai Yuting, Zhao Fuqi, Huang Lei, Yang Na, Cai Xufu, Kong Weibo

机构信息

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.

College of Civil Aviation Safety Engineering, Civil Aviation Flight University of China, Guanghan 618307, China.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 15;15(10):13165-13175. doi: 10.1021/acsami.3c00169. Epub 2023 Mar 6.

Abstract

In recent years, graphene has been introduced into phase change materials (PCMs) to improve thermal conductivity to enhance the heat transfer efficiency in thermal energy storage. However, graphenes tend to aggregate in PCMs, leading to the low thermal conductivity efficient enhancement (TCEE), anisotropic thermal conductivity, and deterioration of mechanical performance of PCMs. In this work, we fabricated biomimetic thermally conductive solid-solid PCMs (SSPCMs) by facile blending of the graphene into well-designed polyurethane SSPCMs, in which the graphene established a controllable and highly efficient isotropic thermally conductive pathway based on the π-π stacking between the graphene and the polymer aromatic ring segment. The as-fabricated SSPCMs showed high TCEE (156.78%), excellent flexibility (328% elongation at break), high enthalpy value (>101 J/g), and solid-solid phase transition properties, under 2% loading of graphene. The proportion of in-plane to through-plane thermal conductivity can be adjusted by an elaborate design of the aromatic ring segment in polyurethane SSPCMs. We further demonstrated mechanical flexibility and photothermal property of the composites to reveal their potential in practical applications.

摘要

近年来,石墨烯已被引入相变材料(PCM)中,以提高热导率,从而增强热能存储中的热传递效率。然而,石墨烯在PCM中容易聚集,导致热导率有效增强(TCEE)较低、热导率呈各向异性以及PCM的机械性能下降。在这项工作中,我们通过将石墨烯轻松混入精心设计的聚氨酯固-固PCM中,制备了仿生导热固-固PCM(SSPCM),其中石墨烯基于石墨烯与聚合物芳环段之间的π-π堆积建立了可控且高效的各向同性导热通道。在石墨烯负载量为2%的情况下,所制备的SSPCM表现出高TCEE(156.78%)、出色的柔韧性(断裂伸长率为328%)、高焓值(>101 J/g)以及固-固相变特性。通过对聚氨酯SSPCM中芳环段的精心设计,可以调节面内热导率与面外热导率的比例。我们进一步展示了复合材料的机械柔韧性和光热性能,以揭示它们在实际应用中的潜力。

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