Di Jingru, Duan Yuping, Pang Huifang, Jia Hanxiao, Liu Xiaoji
Key Laboratory of Solidification Control and Digital Preparation Technology (Liaoning Province), School of Materials Science and Engineering, Dalian University of Technology, Dalian, Liaoning 116085, People's Republic of China.
ACS Appl Mater Interfaces. 2022 Nov 16;14(45):51545-51554. doi: 10.1021/acsami.2c15916. Epub 2022 Nov 1.
It has been accepted that the uniform distribution of magnetic metal particles is beneficial to microwave absorption, while why the homogeneous magnetic particles on the dielectric substrate improve the electromagnetic loss is still unclear. Herein, metal Ni nanoparticles, two-dimensional (2D) basalt/scattered Ni, and basalt/uniform Ni microflakes are obtained through a pretreatment and electroless deposition process. In comparison to Ni nanoparticles and basalt/scattered Ni, the basalt/Ni microflakes with largely uniform and compact Ni nanolayers on basalt, breaking the percolation limit, are favorable for enhanced electromagnetic attenuation. The Ni nanolayers are convenient for construction of a microscale conductive net and migration of an electron. The 2D heterostructures constructed by basalt substrates and decorated Ni layers boost multiple scattering absorption and promote interfacial polarization. Meanwhile, exposed Ni does not inhibit magnetic resonance, enabling strong magnetic coupling. Consequently, the basalt/Ni microflakes with uniform Ni nanolayers demonstrate better microwave absorption with a minimum reflection loss of -30 dB and an effective absorption bandwidth of 3 GHz at 1 mm. This work shows that the uniform and compact magnetic metal nanolayers are effective in improving the dielectric loss and magnetic loss simultaneously to achieve the high-performance microwave absorption.
人们已经认识到磁性金属颗粒的均匀分布有利于微波吸收,然而,介质基底上的均匀磁性颗粒为何能改善电磁损耗仍不清楚。在此,通过预处理和化学沉积工艺获得了金属镍纳米颗粒、二维(2D)玄武岩/分散镍以及玄武岩/均匀镍微片。与镍纳米颗粒和玄武岩/分散镍相比,在玄武岩上具有大量均匀且致密镍纳米层、突破渗流极限的玄武岩/镍微片有利于增强电磁衰减。镍纳米层便于构建微观导电网络和电子迁移。由玄武岩基底和修饰的镍层构建的二维异质结构促进了多重散射吸收并增强了界面极化。同时,暴露的镍不会抑制磁共振,从而实现强磁耦合。因此,具有均匀镍纳米层的玄武岩/镍微片表现出更好的微波吸收性能,在1 mm处最小反射损耗为 -30 dB,有效吸收带宽为3 GHz。这项工作表明,均匀且致密的磁性金属纳米层能有效同时改善介电损耗和磁损耗,以实现高性能微波吸收。