Liang Weijie, Li Tiehu, Zhou Xiaocong, Ge Xin, Chen Xunjun, Lin Zehua, Pang Xiaoyan, Ge Jianfang
Shaanxi Engineering Laboratory for Graphene New Carbon Materials and Applications, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.
Guangdong Engineering Research Center of Silicone Electronic Fine Chemicals, College of Chemistry and Chemical Engineering, Zhongkai University of Agriculture and Engineering, Guangzhou 510225, China.
Nanomaterials (Basel). 2020 Mar 18;10(3):544. doi: 10.3390/nano10030544.
The enhancement of thermally conductive performances for lightweight thermal interface materials is a long-term effort. The superb micro-structures of the thermal conductivity enhancer have an important impact on increasing thermal conductivity and decreasing thermal resistance. Here, globular flower-like reduced graphene oxide (GFRGO) is designed by the self-assembly of reduced graphene oxide (RGO) sheets, under the assistance of a binder via the spray-assisted method for silicone-based spherical alumina (S-AlO) composites. When the total filler content is fixed at 84 wt%, silicone-based S-AlO composites with 1 wt% of GFRGO exhibit a much more significant increase in thermal conductivity, reduction in thermal resistance and reinforcement in thermal management capability than that of without graphene. Meanwhile, GFRGO is obviously superior to that of their RGO counterparts. Compared with RGO sheets, GFRGO spheres which are well-distributed between the S-AlO fillers and well-dispersed in the matrix can build three-dimensional and isotropic thermally conductive networks more effectively with S-AlO in the matrix, and this minimizes the thermal boundary resistance among components, owning to its structural characteristics. As with RGO, the introduction of GFRGO is helpful when decreasing the density of silicone-based S-AlO composites. These attractive results suggest that the strategy opens new opportunities for fabricating practical, high-performance and light-weight filler-type thermal interface materials.
提高轻质热界面材料的导热性能是一项长期工作。导热增强剂的优异微观结构对提高热导率和降低热阻具有重要影响。在此,通过喷雾辅助法,在粘结剂的辅助下,由还原氧化石墨烯(RGO)片自组装设计出球状花状还原氧化石墨烯(GFRGO),用于制备硅基球形氧化铝(S-AlO)复合材料。当总填料含量固定为84 wt%时,含1 wt% GFRGO的硅基S-AlO复合材料比不含石墨烯的复合材料在热导率提高、热阻降低和热管理能力增强方面表现得更为显著。同时,GFRGO明显优于其RGO同类材料。与RGO片相比,均匀分布于S-AlO填料之间并良好分散在基体中的GFRGO球体能够与基体中的S-AlO更有效地构建三维各向同性导热网络,并且由于其结构特性,这将各组分间的热边界电阻降至最低。与RGO一样,引入GFRGO有助于降低硅基S-AlO复合材料的密度。这些引人注目的结果表明,该策略为制造实用、高性能和轻质的填料型热界面材料开辟了新机遇。