Huang Kun, Pei Songfeng, Wei Qinwei, Zhang Qing, Guo Jiaqi, Ma Chaoqun, Cheng Hui-Ming, Ren Wencai
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, P. R. China.
School of Materials Science and Engineering, University of Science and Technology of China, 72 Wenhua Road, Shenyang 110016, P. R. China.
ACS Nano. 2024 Aug 27;18(34):23468-23476. doi: 10.1021/acsnano.4c06952. Epub 2024 Aug 16.
Highly thermally conductive and flexible thermal interface materials (TIMs) are desirable for heat dissipation in modern electronic devices. Here, we fabricated a high-crystalline aligned graphene lamella framework (AGLF) with precisely controlled lamella thickness, pore structure, and excellent intergraphene contact by manipulating the thermal expansion behavior of scanning centrifugal casted graphene oxide films. The rational design of the AGLF balances the trade-off between the thermal conductivity and flexibility of TIMs. The AGLF-based TIM (AGLF-TIM) shows a record thermal conductivity of 196.3 W m K with a graphene loading of only 9.4 vol %, which is about 4 times higher than those of reported TIMs at a similar graphene loading. Meanwhile, good flexibility remains comparable to that of commercial TIMs. As a result, an LED device achieves an additional temperature decrease of ∼8 °C with the use of AGLF-TIM compared to high-performance commercial TIMs. This work offers a strategy for the controlled fabrication of graphene macrostructures, showing the potential use of graphene as filler frameworks in thermal management.
高导热且柔性的热界面材料(TIMs)对于现代电子设备的散热至关重要。在此,我们通过操控扫描离心浇铸氧化石墨烯薄膜的热膨胀行为,制备了一种具有精确控制的片层厚度、孔隙结构以及优异的片层间接触的高结晶取向石墨烯片层框架(AGLF)。AGLF的合理设计平衡了TIMs在热导率和柔韧性之间的权衡。基于AGLF的TIM(AGLF-TIM)在仅9.4体积%的石墨烯负载量下展现出创纪录的196.3 W m⁻¹ K⁻¹的热导率,这比在类似石墨烯负载量下报道的TIMs高出约4倍。同时,良好的柔韧性与商用TIMs相当。因此,与高性能商用TIMs相比,使用AGLF-TIM的LED器件实现了约8°C的额外温度降低。这项工作为石墨烯宏观结构的可控制备提供了一种策略,展示了石墨烯作为热管理中填料框架的潜在用途。