Liu Luqi, Xu Chenchen, Yang Yuequan, Fu Chao, Ma Fuliang, Zeng Zhixiang, Wang Gang
Key Laboratory of Advanced Marine Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, P. R. China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
Mater Horiz. 2025 Jan 2;12(1):64-91. doi: 10.1039/d4mh00846d.
Graphene, with its high thermal conductivity (), excellent mechanical properties, and thermal stability, is an ideal filler for developing advanced high and heat dissipation materials. However, creating graphene-based polymer nanocomposites (GPNs) with high remains a significant challenge to meet the demand for efficient heat dissipation. Here, the effects of graphene material and structure on thermal properties are investigated from both microscopic and macroscopic perspectives. Initially, it briefly introduces the influence of graphene structural parameters on its intrinsic , along with summarizing methods to adjust these parameters. Various techniques for establishing different thermal conductivity pathways at the macroscopic scale (including filler hybridization, 3D networks, horizontal alignment, and vertical alignment) are reviewed, along with their respective advantages and disadvantages. Furthermore, we discuss the applications of GPNs as thermal interface materials (TIMs), phase change materials (PCMs), and smart responsive thermal management materials in the field of thermal management. Finally, the current challenges and future perspectives of GPN research are discussed. This review offers researchers a comprehensive overview of recent advancements in GPNs for thermal management and guidance for developing the next generation of thermally conductive polymer composites.
石墨烯具有高导热性、优异的机械性能和热稳定性,是开发先进高导热和散热材料的理想填料。然而,制备具有高导热性的石墨烯基聚合物纳米复合材料(GPNs)仍然是满足高效散热需求的一项重大挑战。在此,从微观和宏观两个角度研究了石墨烯材料和结构对热性能的影响。首先,简要介绍了石墨烯结构参数对其本征导热性的影响,并总结了调整这些参数的方法。综述了在宏观尺度上建立不同导热途径的各种技术(包括填料杂化、三维网络、水平排列和垂直排列)及其各自的优缺点。此外,我们还讨论了GPNs作为热界面材料(TIMs)、相变材料(PCMs)和智能响应热管理材料在热管理领域的应用。最后,讨论了GPN研究当前面临的挑战和未来展望。本综述为研究人员提供了GPNs在热管理方面的最新进展的全面概述,以及开发下一代导热聚合物复合材料的指导。