School of Materials Science and Engineering, Georgia Institute of Technology, 771 Ferst Drive, Atlanta, Georgia 30332, United States.
ACS Nano. 2011 Mar 22;5(3):2392-401. doi: 10.1021/nn200181e. Epub 2011 Mar 8.
Thermally conductive functionalized multilayer graphene sheets (fMGs) are efficiently aligned in large-scale by a vacuum filtration method at room temperature, as evidenced by SEM images and polarized Raman spectroscopy. A remarkably strong anisotropy in properties of aligned fMGs is observed. High electrical (∼386 S cm(-1)) and thermal conductivity (∼112 W m(-1) K(-1) at 25 °C) and ultralow coefficient of thermal expansion (∼-0.71 ppm K(-1)) in the in-plane direction of A-fMGs are obtained without any reduction process. Aligned fMGs are vertically assembled between contacted silicon/silicon surfaces with pure indium as a metallic medium. Thus-constructed three-dimensional vertically aligned fMG thermal interfacial material (VA-fMG TIM) architecture has significantly higher equivalent thermal conductivity (75.5 W m(-1) K(-1)) and lower contact thermal resistance (5.1 mm2 K W(-1)), compared with their counterpart from A-fMGs that are recumbent between silicon surfaces. This finding provides a throughout approach for a graphene-based TIM assembly as well as knowledge of vertically aligned graphene architectures, which may not only facilitate graphene's application in current demanding thermal management but also promote its widespread applications in electrodes of energy storage devices, conductive polymeric composites, etc.
导热功能化多层石墨烯片(fMGs)可通过室温下的真空过滤方法大规模排列,这可通过 SEM 图像和偏振拉曼光谱得到证明。观察到排列的 fMGs 的性能具有显著的各向异性。在 A-fMGs 的面内方向上获得了高电导率(约 386 S cm(-1)) 和热导率(在 25°C 时约为 112 W m(-1) K(-1))以及超低的热膨胀系数(约为-0.71 ppm K(-1)),而无需任何还原过程。排列的 fMGs 作为金属介质,在接触的硅/硅表面之间垂直组装。因此,构建的三维垂直排列的 fMG 热界面材料(VA-fMG TIM)结构具有更高的等效热导率(75.5 W m(-1) K(-1)) 和更低的接触热阻(5.1 mm2 K W(-1)),与在硅表面之间倾斜的 A-fMGs 相比。这一发现为基于石墨烯的 TIM 组装以及垂直排列的石墨烯结构提供了全面的方法,这不仅可能促进石墨烯在当前迫切的热管理中的应用,而且还可能促进其在储能设备的电极、导电聚合物复合材料等领域的广泛应用。