Wang Ziming, Cao Yiyang, Pan Decai, Hu Sen
College of Aerospace Engineering, Chongqing University, Chongqing 400044, China.
Polymers (Basel). 2020 May 14;12(5):1121. doi: 10.3390/polym12051121.
Natural graphite flakes possess high theoretical thermal conductivity and can notably enhance the thermal conductive property of polymeric composites. Currently, because of weak interaction between graphite flakes, it is hard to construct a three-dimensional graphite network to achieve efficient heat transfer channels. In this study, vertically aligned and interconnected graphite skeletons were prepared with graphene oxide serving as bridge and support via freeze-casting method. Three freezing temperatures were utilized, and the resulting graphite and graphene oxide network was filled in a polymeric matrix. Benefiting from the ultralow freezing temperature of -196 °C, the network and its composite occupied a more uniform and denser structure, which lead to enhanced thermal conductivity (2.15 W m K) with high enhancement efficiency and prominent mechanical properties. It can be significantly attributed to the well oriented graphite and graphene oxide bridges between graphite flakes. This simple and effective strategy may bring opportunities to develop high-performance thermal interface materials with great potential.
天然石墨片具有较高的理论热导率,能够显著提高聚合物复合材料的导热性能。目前,由于石墨片之间的相互作用较弱,难以构建三维石墨网络以实现高效的热传递通道。在本研究中,通过冷冻铸造法,以氧化石墨烯作为桥梁和支撑体,制备了垂直排列且相互连接的石墨骨架。使用了三种冷冻温度,并将所得的石墨和氧化石墨烯网络填充到聚合物基体中。受益于-196℃的超低冷冻温度,该网络及其复合材料具有更均匀、更致密的结构,从而实现了具有高增强效率和卓越力学性能的热导率增强(2.15W m K)。这可显著归因于石墨片之间取向良好的石墨和氧化石墨烯桥梁。这种简单有效的策略可能为开发具有巨大潜力的高性能热界面材料带来机遇。