Cui Peiyu, Zou Pengbo, Kang Yifan, Yan Xiang, Zhou Xin, Wang BoKun, Wu Fan, Pan Shibing, Ma Jiacheng, Huang Wenhuan
Key Laboratory of Chemical Additives for China National Light Industry, College of Chemistry and Chemical Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
Department of Chemistry, School of Science, Tianjin University, Tianjin 300072, China.
Research (Wash D C). 2025 Sep 16;8:0868. doi: 10.34133/research.0868. eCollection 2025.
The elevated dielectric properties of carbonized cotton fibers with refined conductive networks result in substantial impedance mismatch, severely compromising their electromagnetic wave (EMW) absorption performance. Using cotton fibers and [Zn(pz)] complexes as easily prepared and low-cost raw materials, nano-hierarchically porous MnFeCuCe@C composites were constructed efficiently through optimization of the dynamic balance of element content and carbonization temperature. The results show that MnFeCuCe@C-20% exhibited a minimum reflection loss (RL) of -81.44 dB with a thickness of only 1.52 mm at an ultralow loading of 20 wt%, and the effective absorption bandwidth of MnFeCuCe@C-900 °C was also remarkably enlarged to 5.13 GHz at a thickness of 1.6 mm. Modifying only the metal content of the precursor and carbonization temperature can effectively reinforce the magnetic-dielectric synergy and impedance matching. The augmented EMW attenuation primarily stems from the inherent hierarchical porous structure of the MnFeCuCe@C nanocomposite and the rapid electron migration within its high-entropy metal particles. Furthermore, its excellent dissipation capability in practical application scenarios was demonstrated further through radar cross-section simulations. This work comprehensively delineates the optimization strategies for material dielectric properties as well as the convenient and environmental synthesis method.
具有精细导电网络的碳化棉纤维的介电性能提高,导致严重的阻抗失配,严重损害了它们的电磁波(EMW)吸收性能。使用棉纤维和[Zn(pz)]配合物作为易于制备且低成本的原材料,通过优化元素含量和碳化温度的动态平衡,高效构建了纳米级分层多孔MnFeCuCe@C复合材料。结果表明,MnFeCuCe@C-20%在20 wt%的超低负载量下,厚度仅为1.52 mm时表现出-81.44 dB的最小反射损耗(RL),并且MnFeCuCe@C-900 °C在厚度为1.6 mm时的有效吸收带宽也显著扩大到5.13 GHz。仅改变前驱体的金属含量和碳化温度就能有效地增强磁电协同效应和阻抗匹配。增强的EMW衰减主要源于MnFeCuCe@C纳米复合材料固有的分层多孔结构以及其高熵金属颗粒内的快速电子迁移。此外,通过雷达散射截面模拟进一步证明了其在实际应用场景中的优异耗散能力。这项工作全面描述了材料介电性能的优化策略以及便捷的环境友好型合成方法。