Chen Yu, Quan Bin, Liu Jiajia, Lu Xiaochi, Lin Litao, Shao Gaofeng, Wen You, Jin Ruiheng, Shen Xiying, Huang Xiaogu
School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China.
College of Electronic and Optical Engineering & College of Flexible Electronics (future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, China.
ACS Appl Mater Interfaces. 2025 Feb 12;17(6):9748-9759. doi: 10.1021/acsami.4c17865. Epub 2025 Jan 31.
Electromagnetic wave absorption materials that can be utilized for freewill adhering or peeling from the target substrate remain a challenge to be solved. Compared to powder-based slurry and coatings, microwave absorption films possess clear advantages for their good flexibility and machinability. However, the matching thickness and effective bandwidth of 2D microwave absorption films cannot satisfy the current application requirements. As a result, it is necessary to complete a rational structural design based on flat films. In view of the fact that common film-forming methods based on blocks or hard bases cannot be changed or replaced easily once the structural construction is done, here solvent evaporation molding combined with phase change material filling was proposed for the first time to accomplish continuous structural transformation for flexible films. Unlike the original reflection loss (RL) peaks of flat films at around 17.0 GHz, a new absorption peak near 12.25 GHz was generated thanks to the design of coherent structures, resulting in the peaks' boundary merging and effective bandwidth extension. Specifically, 4.56 GHz of absorption bandwidth (RL < -5 dB) at 1.0 mm and 4.27 GHz (RL < -10 dB) of absorption bandwidth at 2.3 mm could be obtained by arch testing under electrical field polarization. Importantly, correlations between EM field polarizations and coherent structures as well as the rules of the absorption peak generation and frequency shift related to the structural variation have all been figured out. The presented laws of EM pattern evolutions for structural films in this work lay the foundation for the applications of high-efficiency microwave absorption materials in complex surfaces and switchable scenes.
能够自由地附着在目标基材上或从其剥离的电磁波吸收材料仍是一个有待解决的难题。与基于粉末的浆料和涂层相比,微波吸收薄膜具有良好的柔韧性和可加工性,具有明显优势。然而,二维微波吸收薄膜的匹配厚度和有效带宽无法满足当前的应用需求。因此,有必要基于平面薄膜完成合理的结构设计。鉴于基于块体或硬质基底的常见成膜方法一旦完成结构构建就难以轻易改变或替换,本文首次提出将溶剂蒸发成型与相变材料填充相结合,以实现柔性薄膜的连续结构转变。与平面薄膜在17.0 GHz左右的原始反射损耗(RL)峰不同,由于相干结构的设计,在12.25 GHz附近产生了一个新的吸收峰,导致峰边界合并和有效带宽扩展。具体而言,通过电场极化下的拱形测试,在1.0 mm厚度时可获得4.56 GHz的吸收带宽(RL < -5 dB),在2.3 mm厚度时可获得4.27 GHz(RL < -10 dB)的吸收带宽。重要的是,已经弄清楚了电磁场极化与相干结构之间的相关性以及与结构变化相关的吸收峰产生和频移规则。本文所呈现的结构薄膜电磁模式演变规律为高效微波吸收材料在复杂表面和可切换场景中的应用奠定了基础。