Yang Dongdong, Dong Shun, Cui Tangyin, Xin Jianqiang, Xu Xiaojing, Chen Jingmao, Xie Yongshuai, Chen Guiqing, Hong Changqing, Zhang Xinghong
National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Harbin Institute of Technology, Harbin, 150001, P. R. China.
Shandong Research and Design Institute of Industrial Ceramics, Zibo, 255000, P. R. China.
Small. 2024 Jun;20(23):e2308145. doi: 10.1002/smll.202308145. Epub 2023 Dec 27.
Carbon fiber composites have great application prospects as a potential electromagnetic (EM) wave-absorbing material, yet it remains extremely challenging to integrate multiple functions of EM wave absorption, mechanical strength, thermal insulation, and flame retardancy. Herein, a novel carbon fiber reinforced C/SiOC aerogel (CF/CS) composite is successfully prepared by sol-gel impregnation combined with an ambient drying process for the first time. The density of the obtained CF/CS composites can be controlled just by changing sol-gel impregnation cycles (original carbon fiber felt (S0), and samples with one (S1) and two (S2) impregnation cycles are 0.249, 0.324, and 0.402 g cm, respectively), allowing for efficient tuning of their properties. Remarkably, S2 displays excellent microwave absorption properties, with an optimal reflection loss of -65.45 dB, which is significantly improved than S0 (-10.90 dB). Simultaneously, compared with S0 (0.75 and 0.30 MPa in the x/y and z directions), the mechanical performance of S2 is dramatically improved with a maximum compressive strength of 10.37 and 4.93 MPa in the x/y and z directions, respectively. Moreover, CF/CS composites show superior thermal insulation capability than S0 and obtain good flame-retardant properties. This work provides valuable guidance and inspiration for the development of multifunctional EM wave absorbers.
碳纤维复合材料作为一种潜在的电磁波吸收材料具有广阔的应用前景,但要实现电磁波吸收、机械强度、隔热和阻燃等多种功能的集成仍然极具挑战性。在此,首次通过溶胶 - 凝胶浸渍结合常压干燥工艺成功制备了一种新型碳纤维增强C/SiOC气凝胶(CF/CS)复合材料。所得CF/CS复合材料的密度可仅通过改变溶胶 - 凝胶浸渍循环次数来控制(原始碳纤维毡(S0)以及经过一次(S1)和两次(S2)浸渍循环的样品密度分别为0.249、0.324和0.402 g/cm³),从而实现对其性能的有效调控。值得注意的是,S2表现出优异的微波吸收性能,最佳反射损耗为 -65.45 dB,相较于S0(-10.90 dB)有显著提升。同时,与S0(在x/y和z方向的抗压强度分别为0.75和0.30 MPa)相比,S2的力学性能大幅提高,在x/y和z方向的最大抗压强度分别为10.37和4.93 MPa。此外,CF/CS复合材料比S0具有更优异的隔热能力,并获得了良好的阻燃性能。这项工作为多功能电磁波吸收体的开发提供了有价值的指导和启示。