Cheng Zheng, Wang Ruofeng, Cao Yishu, Zhang Zhiwei, Ma Wenle, Zhang Tianrui, Fan Fei, Huang Yi
National Institute for Advanced Materials, Tianjin Key Laboratory of Metal and Molecule Based Material Chemistry, Key Laboratory of Functional Polymer Materials, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), School of Materials Science and Engineering, Nankai University, Tianjin 300350, P. R. China.
Institute of Modern Optics, Tianjin Key Laboratory of Micro-Scale Optical Information Science and Technology, Nankai University, Tianjin 300350, P. R. China.
ACS Appl Mater Interfaces. 2022 Jan 19;14(2):3218-3232. doi: 10.1021/acsami.1c22100. Epub 2022 Jan 5.
High-performance electromagnetic wave-absorbing (EMA) materials used in high-temperature environments are of great importance in both civil and military fields. Herein, we have developed the ultralight graphene/polyaramid composite foam for wideband electromagnetic wave absorption in both gigahertz and terahertz bands, with a higher service temperature of 300 °C. It is found that strong interfacial π-π interactions are spontaneously constructed between graphene and polyaramids (PA), during the foam preparation process. This endows the foam with two advantages for its EMA performance. First, the π-π interactions trigger the interfacial polarization for enhanced microwave dissipation, as confirmed by the experimental and simulation results. The composite foam with an ultralow density (0.0038 g/cm) shows a minimum reflection loss (RL) of -36.5 dB and an effective absorption bandwidth (EAB) of 8.4 GHz between 2 and 18 GHz band. Meanwhile, excellent terahertz (THz) absorption is also achieved, with EAB covering the entire 0.2-1.6 THz range. Second, the interfacial π-π interactions promote PA to present a unique in-plane orientation configuration along the graphene surface, thus making PA the effective antioxidation barrier layer for graphene at high temperatures. The EMA performance of the foam could be completely preserved after 300 °C treatment in air atmosphere. Furthermore, the composite foam exhibits multifunctions, including good compressive, thermal insulating, and flame-retardant properties. We believe that this study could provide useful guidance for the design of next-generation EMA materials used in harsh environments.
用于高温环境的高性能电磁波吸收(EMA)材料在民用和军事领域都具有重要意义。在此,我们开发了一种超轻的石墨烯/聚芳酰胺复合泡沫材料,用于在吉赫兹和太赫兹频段进行宽带电磁波吸收,其最高使用温度为300°C。研究发现,在泡沫制备过程中,石墨烯与聚芳酰胺(PA)之间自发构建了强烈的界面π-π相互作用。这赋予了该泡沫材料在EMA性能方面的两个优势。首先,π-π相互作用引发界面极化,增强微波耗散,实验和模拟结果均证实了这一点。这种超低密度(0.0038 g/cm)的复合泡沫在2至18 GHz频段显示出-36.5 dB的最小反射损耗(RL)和8.4 GHz的有效吸收带宽(EAB)。同时,还实现了优异的太赫兹(THz)吸收,EAB覆盖了整个0.2 - 1.6 THz范围。其次,界面π-π相互作用促使PA沿着石墨烯表面呈现独特的面内取向构型,从而使PA在高温下成为石墨烯有效的抗氧化阻挡层。在空气气氛中300°C处理后,该泡沫材料的EMA性能能够完全保持。此外,这种复合泡沫还具有多种功能,包括良好的压缩性、隔热性和阻燃性。我们相信这项研究能够为在恶劣环境中使用的下一代EMA材料的设计提供有益的指导。