Sultanov Fail, Daulbayev Chingis, Bakbolat Baglan, Daulbayev Olzhas
Al-Farabi Kazakh National University, Almaty, Kazakhstan; Institute of Combustion Problems, Almaty, Kazakhstan.
Al-Farabi Kazakh National University, Almaty, Kazakhstan; Institute of Combustion Problems, Almaty, Kazakhstan.
Adv Colloid Interface Sci. 2020 Nov;285:102281. doi: 10.1016/j.cis.2020.102281. Epub 2020 Sep 26.
The intensive progress of information technology increases the demand for urgent development of practical materials for microwave absorption (MA), meeting the general requirement "thin, wide, light and strong". In the past 6 years, graphene is of great interest for MA performance due to its unique properties such as high specific surface area, high electrical conductivity, strong dielectric loss, and low density. Taking in account that the structure of absorber plays a key role in MA performance, the attempts to produce an efficient microwave absorbing materials (MAMs) have led to 3D graphene - aerogels and foams - due to their extremely high porosity, large specific surface area, excellent mechanical properties with ability of compression and further maintaining the original shape, lightweight, reduced agglomeration of graphene sheets. All listed parameters enhance the impedance matching of MAMs, generate the synergistic loss effects, thereby improving the MA properties. The review describes the bases of MA theory and summarizes the recent achievements in the fabrication of pure 3D graphene networks and their composites with magnetic, ceramic nanoparticles and nanowires, polymers, MXenes, and multicomponent systems, directed to improve the impedance matching and generate loss mechanisms for the overall improvement of their performance as MAMs.
信息技术的飞速发展增加了对迫切开发满足“薄、宽、轻、强”总体要求的微波吸收(MA)实用材料的需求。在过去6年中,石墨烯因其高比表面积、高电导率、强介电损耗和低密度等独特性能而在MA性能方面备受关注。考虑到吸收体的结构在MA性能中起关键作用,制备高效微波吸收材料(MAMs)的尝试催生了3D石墨烯气凝胶和泡沫,这是由于它们具有极高的孔隙率、大比表面积、优异的机械性能,能够压缩并进一步保持原始形状、重量轻、石墨烯片层团聚减少。所有这些参数都增强了MAMs的阻抗匹配,产生协同损耗效应,从而改善MA性能。本文综述了MA理论的基础,并总结了在制备纯3D石墨烯网络及其与磁性、陶瓷纳米颗粒和纳米线、聚合物、MXenes以及多组分体系的复合材料方面的最新成果,旨在改善阻抗匹配并产生损耗机制,以全面提高其作为MAMs的性能。