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Preparation of an Fe3O4 Nanoparticle/Carbonized Hemp Fiber Composite with Superior Microwave Absorption Performance

机译:具有优异微波吸收性能的Fe3O4纳米颗粒/碳化大麻纤维复合材料的制备

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摘要

The increasing concern over the negative impact of electromagnetic radiation and interference on humans has led to a growing interest in microwave-absorbing materials that are cost-effective, have a wide frequency range, and have high efficiency. In this paper, an Fe3O4 nanoparticle/carbonized hemp fiber composite was successfully prepared using hemp fibers as the primary material and template. By carefully regulating the concentration of the iron nitrate impregnation solution, accurate loading of Fe3O4 nanoparticles onto the carbonized hemp fiber was achieved. Due to its unique porous structure, the balance between impedance matching, and electromagnetic loss, the prepared Fe3O4 nanoparticle/carbonized hemp fiber composite exhibits light weight, high absorption strength, and broadband absorption characteristics. The broadest absorption bandwidth of 6.1 GHz can be achieved, covering the entire Ku-band, and the minimum refection loss is as low as −49.7 dB. More interestingly, the Fe3O4 nanoparticle/carbonized hemp fiber composite exhibits attractive microwave absorption performance in both the X-band and Ku-band even with a wide range of Fe3O4 nanoparticle loading. Furthermore, simulations of the radar cross section (RCS) have confirmed that the Fe3O4 nanoparticle/carbonized hemp fiber composite is effective in attenuating electromagnetic waves in a real environment. This work presents an economical and efficient method for the development of porous carbon-based absorbents.
机译:人们越来越关注电磁辐射和干扰对人类的负面影响,这导致人们对具有成本效益、频率范围宽、效率高的微波吸收材料越来越感兴趣。本文以大麻纤维为主要材料和模板,成功制备了Fe3O4纳米颗粒/碳化大麻纤维复合材料。通过仔细调节硝酸铁浸渍液的浓度,实现了 Fe3O4 纳米颗粒的准确负载到碳化大麻纤维上。由于其独特的多孔结构、阻抗匹配和电磁损耗之间的平衡,所制备的 Fe3O4 纳米颗粒/碳化大麻纤维复合材料具有重量轻、吸收强度高和宽带吸收特性。可实现 6.1 GHz 的最宽吸收带宽,覆盖整个 Ku 波段,最小反射损耗低至 −49.7 dB。更有趣的是,即使在 Fe3O4 纳米颗粒负载范围很广的情况下,Fe3O4 纳米颗粒/碳化大麻纤维复合材料在 X 波段和 Ku 波段也表现出有吸引力的微波吸收性能。此外,雷达散射截面 (RCS) 的模拟证实,Fe3O4 纳米颗粒/碳化大麻纤维复合材料可有效衰减真实环境中的电磁波。这项工作提出了一种开发多孔碳基吸收剂的经济有效的方法。

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