Li Jing, Lei Rubai, Lai Jinfeng, Chen Xuyang, Li Yang
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, China.
School of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou 510641, China.
Materials (Basel). 2019 Mar 22;12(6):954. doi: 10.3390/ma12060954.
The high thermal conductivity and stability, outstanding mechanical properties, and low weight make graphene suitable for many applications in the realm of thermal management, especially in high integration systems. Herein, we report a high-performance, low-temperature reduced graphene oxide/magnetic carbon fiber composite film. Magnetic carbon fibers were prepared using a co-precipitation method, and the graphene oxide solution was prepared using an improved Hummers' method. The magnetic carbon fibers were orientated by magnetite and immersed in the graphene oxide solution during filtration, followed by annealing at 800 °C. The composite film exhibited improved thermal conductivity (over 600 W/m·K) and mechanical properties (tensile strength of 37.1 MPa and bending cycle of up to 8000). The experimental results illustrate that the graphene in the composite membrane provides heat transfer channels to promote in-plane thermal conductivity, while the magnetic carbon fiber acts as a scaffold to reinforce the mechanical properties and improve the quality of the graphene. Due to the synergistic effect of the graphene and magnetic carbon, this composite has wide potential applications in heat dissipation.
高导热性和稳定性、出色的机械性能以及低重量使得石墨烯适用于热管理领域的许多应用,尤其是在高集成系统中。在此,我们报道了一种高性能、低温还原氧化石墨烯/磁性碳纤维复合薄膜。采用共沉淀法制备磁性碳纤维,采用改进的Hummers法制备氧化石墨烯溶液。磁性碳纤维由磁铁矿定向,并在过滤过程中浸入氧化石墨烯溶液中,随后在800℃下退火。该复合薄膜表现出改善的热导率(超过600W/m·K)和机械性能(拉伸强度为37.1MPa,弯曲循环次数高达8000次)。实验结果表明,复合膜中的石墨烯提供了热传递通道以促进面内热导率,而磁性碳纤维作为支架增强了机械性能并提高了石墨烯的质量。由于石墨烯和磁性碳的协同效应,这种复合材料在散热方面具有广泛的潜在应用。