Yu Huitao, Peng Lianqiang, Chen Can, Qin Mengmeng, Feng Wei
School of Materials Science and Engineering, Tianjin Key Laboratory of Composite and Functional Materials, Tianjin University, Tianjin, 300350, People's Republic of China.
Nanomicro Lett. 2024 May 17;16(1):198. doi: 10.1007/s40820-024-01426-0.
Vertically oriented carbon structures constructed from low-dimensional carbon materials are ideal frameworks for high-performance thermal interface materials (TIMs). However, improving the interfacial heat-transfer efficiency of vertically oriented carbon structures is a challenging task. Herein, an orthotropic three-dimensional (3D) hybrid carbon network (VSCG) is fabricated by depositing vertically aligned carbon nanotubes (VACNTs) on the surface of a horizontally oriented graphene film (HOGF). The interfacial interaction between the VACNTs and HOGF is then optimized through an annealing strategy. After regulating the orientation structure of the VACNTs and filling the VSCG with polydimethylsiloxane (PDMS), VSCG/PDMS composites with excellent 3D thermal conductive properties are obtained. The highest in-plane and through-plane thermal conductivities of the composites are 113.61 and 24.37 W m K, respectively. The high contact area of HOGF and good compressibility of VACNTs imbue the VSCG/PDMS composite with low thermal resistance. In addition, the interfacial heat-transfer efficiency of VSCG/PDMS composite in the TIM performance was improved by 71.3% compared to that of a state-of-the-art thermal pad. This new structural design can potentially realize high-performance TIMs that meet the need for high thermal conductivity and low contact thermal resistance in interfacial heat-transfer processes.
由低维碳材料构建的垂直取向碳结构是高性能热界面材料(TIMs)的理想框架。然而,提高垂直取向碳结构的界面传热效率是一项具有挑战性的任务。在此,通过在水平取向石墨烯薄膜(HOGF)表面沉积垂直排列的碳纳米管(VACNTs)来制备正交各向异性三维(3D)混合碳网络(VSCG)。然后通过退火策略优化VACNTs与HOGF之间的界面相互作用。在调节VACNTs的取向结构并用聚二甲基硅氧烷(PDMS)填充VSCG后,获得了具有优异3D热传导性能的VSCG/PDMS复合材料。该复合材料的最高面内和面外热导率分别为113.61和24.37W m⁻¹K⁻¹。HOGF的高接触面积和VACNTs的良好压缩性赋予了VSCG/PDMS复合材料低的热阻。此外,与一种先进的热垫相比,VSCG/PDMS复合材料在TIM性能方面的界面传热效率提高了71.3%。这种新的结构设计有可能实现满足界面传热过程中高导热率和低接触热阻需求的高性能TIMs。