School of Physics and Nuclear Energy Engineering, Beihang University, Beijing, 100191, China.
Department of Mechanical Engineering, University of Delaware, Newark, DE, 19716, United States.
Sci Rep. 2017 May 24;7(1):2349. doi: 10.1038/s41598-017-02639-7.
Graphene has sparked extensive research interest for its excellent physical properties and its unique potential for application in absorption of electromagnetic waves. However, the processing of stable large-scale graphene and magnetic particles on a micrometer-thick conductive support is a formidable challenge for achieving high reflection loss and impedance matching between the absorber and free space. Herein, a novel and simple approach for the processing of a CNT film-FeO-large scale graphene composite is studied. The FeO particles with size in the range of 20-200 nm are uniformly aligned along the axial direction of the CNTs. The composite exhibits exceptionally high wave absorption capacity even at a very low thickness. Minimum reflection loss of -44.7 dB and absorbing bandwidth of 4.7 GHz at -10 dB are achieved in composites with one-layer graphene in six-layer CNT film-FeO prepared from 0.04 M FeCl. Microstructural and theoretical studies of the wave-absorbing mechanism reveal a unique Debye dipolar relaxation with an Eddy current effect in the absorbing bandwidth.
石墨烯因其优异的物理性能及其在吸收电磁波方面的独特应用潜力而引起了广泛的研究兴趣。然而,在微米厚的导电衬底上稳定地处理大规模的石墨烯和磁性颗粒是实现高反射损耗和吸收剂与自由空间之间阻抗匹配的巨大挑战。在此,研究了一种处理 CNT 膜-FeO-大尺寸石墨烯复合材料的新方法。尺寸在 20-200nm 范围内的 FeO 颗粒沿 CNT 的轴向方向均匀排列。该复合材料在非常低的厚度下表现出异常高的波吸收能力。在由 0.04M FeCl 制备的六层层 CNT 膜-FeO 中的一层石墨烯复合材料中,实现了最小反射损耗为-44.7dB 和吸收带宽为 4.7GHz 的-10dB。对吸波机制的微观结构和理论研究表明,在吸收带宽内存在一种独特的德拜偶极子弛豫和涡流效应。