Yuan Guang-Jie, Xie Jie-Fei, Li Hao-Hao, Shan Bo, Zhang Xiao-Xin, Liu Johan, Li Long, Tian Ying-Zhong
Shanghai Key Laboratory of Intelligent Manufacturing and Robotics, School of Automation and Mechanical Engineering, Shanghai University, Shanghai 200444, China.
Sino-Sweden Microsystem Integration Technology (SMIT) Center, School of Automation and Mechanical Engineering, Shanghai University, Shanghai 201800, China.
Materials (Basel). 2020 Jan 10;13(2):317. doi: 10.3390/ma13020317.
Thermally reduced graphene oxide/carbon nanotube (rGO/CNT) composite films were successfully prepared by a high-temperature annealing process. Their microstructure, thermal conductivity and mechanical properties were systematically studied at different annealing temperatures. As the annealing temperature increased, more oxygen-containing functional groups were removed from the composite film, and the percentage of graphene continuously increased. When the annealing temperature increased from 1100 to 1400 °C, the thermal conductivity of the composite film also continuously increased from 673.9 to 1052.1 W m K. Additionally, the Young's modulus was reduced by 63.6%, and the tensile strength was increased by 81.7%. In addition, the introduction of carbon nanotubes provided through-plane thermal conduction pathways for the composite films, which was beneficial for the improvement of their through-plane thermal conductivity. Furthermore, CNTs apparently improved the mechanical properties of rGO/CNT composite films. Compared with the rGO film, 1 wt% CNTs reduced the Young's modulus by 93.3% and increased the tensile strength of the rGO/CNT composite film by 60.3%, which could greatly improve its flexibility. Therefore, the rGO/CNT composite films show great potential for application as thermal interface materials (TIMs) due to their high in-plane thermal conductivity and good mechanical properties.
通过高温退火工艺成功制备了热还原氧化石墨烯/碳纳米管(rGO/CNT)复合薄膜。在不同退火温度下系统研究了它们的微观结构、热导率和力学性能。随着退火温度升高,复合薄膜中更多的含氧官能团被去除,石墨烯的占比不断增加。当退火温度从1100℃升高到1400℃时,复合薄膜的热导率也从673.9 W m⁻¹K⁻¹持续增加到1052.1 W m⁻¹K⁻¹。此外,杨氏模量降低了63.6%,拉伸强度提高了81.7%。另外,碳纳米管的引入为复合薄膜提供了面内热传导路径,有利于提高其面内热导率。而且,碳纳米管显著改善了rGO/CNT复合薄膜的力学性能。与rGO薄膜相比,1 wt%的碳纳米管使杨氏模量降低了93.3%,并使rGO/CNT复合薄膜的拉伸强度提高了60.3%,这可大大提高其柔韧性。因此,rGO/CNT复合薄膜因其高面内热导率和良好的力学性能而在作为热界面材料(TIMs)应用方面显示出巨大潜力。