Zhang Xue, Tian Xuelei, Qiao Jing, Fang Xinrui, Liu Kaiye, Liu Chang, Lin Jingpeng, Li Lutong, Liu Wei, Liu Jiurong, Zeng Zhihui
Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials (Ministry of Education), School of Materials Science and Engineering, Shandong University, Jinan, 250061, P. R. China.
School of Mechanical Engineering, Shandong University, Jinan, 250061, P. R. China.
Small. 2023 Oct;19(40):e2302686. doi: 10.1002/smll.202302686. Epub 2023 May 19.
Developing carbon encapsulated magnetic composites with rational design of microstructure for achieving high-performance electromagnetic wave (EMW) absorption in a facile, sustainable, and energy-efficiency approach is highly demanded yet remains challenging. Here, a type of N-doped carbon nanotube (CNT) encapsulated CoNi alloy nanocomposites with diverse heterostructures are synthesized via the facile, sustainable autocatalytic pyrolysis of porous CoNi-layered double hydroxide/melamine. Specifically, the formation mechanism of the encapsulated structure and the effects of heterogenous microstructure and composition on the EMW absorption performance are ascertained. With the presence of melamine, CoNi alloy emerges its autocatalysis effect to generate N-doped CNTs, leading to unique heterostructure and high oxidation stability. The abundant heterogeneous interfaces induce strong interfacial polarization to EMWs and optimize impedance matching characteristic. Combined with the inherent high conductive and magnetic loss capabilities, the nanocomposites accomplish a high-efficiency EMW absorption performance even at a low filling ratio. The minimum reflection loss of -84.0 dB at the thickness of 3.2 mm and a maximum effective bandwidth of 4.3 GHz are obtained, comparable to the best EMW absorbers. Integrated with the facile, controllable, and sustainable preparation approach of the heterogenous nanocomposites, the work shows a great promise of the nanocarbon encapsulation protocol for achieving lightweight, high-performance EMW absorption materials.
通过合理设计微观结构来开发碳包覆磁性复合材料,以简便、可持续且节能的方式实现高性能电磁波吸收,这一需求迫切但仍具挑战性。在此,通过多孔CoNi层状双氢氧化物/三聚氰胺的简便、可持续自催化热解,合成了一种具有多种异质结构的N掺杂碳纳米管(CNT)包覆CoNi合金纳米复合材料。具体而言,确定了包覆结构的形成机制以及异质微观结构和组成对电磁波吸收性能的影响。在三聚氰胺存在的情况下,CoNi合金发挥其自催化作用生成N掺杂的碳纳米管,从而形成独特的异质结构并具有高氧化稳定性。丰富的异质界面引发对电磁波的强烈界面极化,并优化阻抗匹配特性。结合固有的高导电和磁损耗能力,即使在低填充率下,这些纳米复合材料也能实现高效的电磁波吸收性能。在3.2毫米厚度处获得了-84.0 dB的最小反射损耗和4.3 GHz的最大有效带宽,与最佳的电磁波吸收体相当。结合异质纳米复合材料简便、可控且可持续的制备方法,这项工作展示了纳米碳包覆方案在实现轻质、高性能电磁波吸收材料方面的巨大潜力。