Wang Yan, Di Xiaochuang, Lu Zhao, Wu Xinming
School of Materials and Chemical Engineering, Xi'an Technological University, Xi'an 710021, PR China.
School of Materials and Chemical Engineering, Xi'an Technological University, Xi'an 710021, PR China.
J Colloid Interface Sci. 2021 May;589:462-471. doi: 10.1016/j.jcis.2021.01.013. Epub 2021 Jan 16.
Nowadays, electromagnetic (EM) radiation poses severe environmental pollution and harm to civilian and military life. To this end, it is urgent to synthesize high-efficiency microwave absorbers in terms of composition and structural design. Herein, we reported a unique hybrid nanostructure with Co particles embedded in hollow carbon polyhedron by a series of synthetic steps including carbonization and pyrolysis. Further, the nanoporous carbon (NPC) derived from wheat flour is coated onto the surface of Co@C polyhedrons, forming a special hierarchical structure (Co@C@NPC), which demonstrates outstanding microwave absorption properties due to the hierarchical porous structure, enhanced interfacial polarization, conduction loss, multi-reflection and matched impedance. Typically, with a 10 wt% filler content, the maximum R of Co@C@NPC reaches -57.2 dB at 9.6 GHz and the corresponding effective bandwidth is 5.7 GHz (from 7.5 to 13.2 GHz) with an absorber thickness of 3 mm. Besides, the filler loading of 10 wt% is much lower than other reported bio-derived absorbers. In short, the hybrid zeolitic imidazolate frameworks offer a novel idea for constructing hollow carbon skeletons and introducing biomass carbon as a green, low cost and renewable material that enhances the dielectric loss and the synergistic effect between permittivity and permeability.
如今,电磁(EM)辐射对民用和军事生活造成了严重的环境污染和危害。为此,从成分和结构设计方面合成高效微波吸收剂迫在眉睫。在此,我们通过包括碳化和热解在内的一系列合成步骤,报道了一种独特的混合纳米结构,其中钴颗粒嵌入中空碳多面体中。此外,由小麦粉衍生的纳米多孔碳(NPC)被包覆在Co@C多面体的表面,形成一种特殊的分级结构(Co@C@NPC),由于分级多孔结构、增强的界面极化、传导损耗、多次反射和匹配阻抗,该结构表现出优异的微波吸收性能。通常,当填料含量为10 wt%时,Co@C@NPC在9.6 GHz时的最大反射率R达到-57.2 dB,相应的有效带宽为5.7 GHz(从7.5到13.2 GHz),吸收体厚度为3 mm。此外,10 wt%的填料负载量远低于其他报道的生物衍生吸收剂。简而言之,这种混合沸石咪唑酯骨架为构建中空碳骨架以及引入生物质碳作为一种绿色、低成本且可再生的材料提供了新思路,该材料可增强介电损耗以及介电常数与磁导率之间的协同效应。