吸收(声学)
材料科学
电磁辐射
结构材料
物理
复合材料
光学
作者
Xiaoli Wang,Juhua Luo,S J Mao,Daqing Cheng,Xing Liu,Yu Xie,Lichun Cheng
标识
DOI:10.26599/jac.2025.9221163
摘要
Achieving high-performance electromagnetic wave absorption (EMWA) capacity at thinner thickness remains a critical yet challenging objective. In this study, Dy2O3/Fe3C/N-doped carbon (DFC) composites were synthesized via a solvothermal process followed by high-temperature carbonization, using metal-organic frameworks (MOFs) as precursors. By systematically adjusting the molar ratio of Dy3+/Fe3+, the dielectric and magnetic properties of the materials were synergistically optimized. The EMWA performance exhibited a non-monotonic dependence on Dy³⁺ content, firstly improving before declining at higher concentrations. At an optimal Dy3+/Fe3+ molar ratio of 1.2:0.8, the DFC composites demonstrated a remarkable minimum reflection loss value of -56.08 dB at a mere 1.76 mm thickness, alongside an effective absorption bandwidth value of 5.12 GHz (12.56-17.68 GHz). The exceptional EMWA performance stems from optimized impedance matching, multiple scattering and reflections, dielectric loss, and magnetic loss. Furthermore, radar cross-section simulations validated the material’s practical applicability. Therefore, this work provided a novel strategy for designing next generation EMWA materials with ultra-thin profiles and wideband absorption capabilities.
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