MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, PR China.
MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, PR China.
J Colloid Interface Sci. 2018 Oct 15;528:174-183. doi: 10.1016/j.jcis.2018.05.046. Epub 2018 May 23.
Graphene-based composites are becoming a new kind of microwave absorbers that can overcome the challenges related to the performance and light weight in electromagnetic pollution precaution. Herein, a series of reduced graphene oxide decorated with carbon nanopolyhedrons (CNPs/rGO) composites have been successfully fabricated through in situ pyrolysis of ZIF-8/GO hybrids. It is found that GO can restrain the growth of ZIF-8 crystals and produce small-size CNPs after high-temperature pyrolysis, and CNPs will suppress the re-stacking of rGO nanosheets. More importantly, the coupling of CNPs and rGO not only generates the desirable synergistic effects, but also accounts for the profitable interfacial polarization. Therefore, the electromagnetic parameters and microwave absorption properties of these composites can be rationally modulated in terms of the amount of GO. The optimized CNPs/rGO composite exhibits strong reflection loss [-66.2 dB (6.2 GHz, 2.89 mm)] and broad qualified bandwidth (over -10 dB in 3.2-18.0 GHz with integrated absorber thickness of 1.0-5.0 mm), which are superior to many graphene-based composites with high-density magnetic components. Electromagnetic analysis reveals that good attenuation ability and impedance matching are responsible for its excellent performance. It is believed that these results may inspire the design of lightweight microwave absorbers in the future.
基于石墨烯的复合材料正成为一种新型的微波吸收体,可以克服电磁污染预防中与性能和轻量化相关的挑战。在此,通过 ZIF-8/GO 杂化物的原位热解成功制备了一系列负载碳纳米多面体(CNPs)的还原氧化石墨烯(rGO)复合材料。研究发现,GO 可以抑制 ZIF-8 晶体的生长,并在高温热解后产生小尺寸的 CNPs,而 CNPs 会抑制 rGO 纳米片的再堆叠。更重要的是,CNPs 和 rGO 的结合不仅产生了理想的协同效应,还产生了有利的界面极化。因此,这些复合材料的电磁参数和微波吸收性能可以通过 GO 的用量来合理调节。优化后的 CNPs/rGO 复合材料表现出强的反射损耗(-66.2dB(6.2GHz,2.89mm))和宽的有效带宽(在 3.2-18.0GHz 范围内,反射损耗低于-10dB,且在 1.0-5.0mm 集成吸收体厚度下),优于许多具有高密度磁性成分的基于石墨烯的复合材料。电磁分析表明,良好的衰减能力和阻抗匹配是其优异性能的原因。相信这些结果可能会激发未来轻量型微波吸收体的设计。