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SiC whiskers-reduced graphene oxide composites decorated with MnO nanoparticles for tunable microwave absorption

机译:SiC晶须 - 用MnO纳米颗粒装饰的SiC晶须 - 用于可调谐微波吸收的氧化物复合材料

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摘要

An excellent electromagnetic (EM) wave absorber with lightweight, broad bandwidth and high-efficiency absorption is urgently demanded for solving the EM interference pollution. A MnO nanoparticles@SiC whiskers/reduced graphene oxide (MnONPs@SiCw/RGO) hybrid composite with enhanced EM wave absorption performance was successfully synthesized by a hydrothermal strategy followed with thermal treatment. The results demonstrate that the annealing temperature was critical for the morphology of MnONPs, resulting in different impedance matching and attenuation constant. Correspondingly, the MnONPs@SiCw/RGO hybrid composite obtained at 800 degrees C presented the best EM wave absorption property, whose minimum reflection loss (RLmin) reached - 54.04 dB at 17.9 GHz with ultrathin matching thickness of only 1.59 nm and the effective absorption bandwidth (EAB) could be dramatically broadened to 7.4 GHz, covering the entire Ku-band. Additionally, almost full-band absorption with a qualified bandwidth of 14.2 GHz could be achieved by changing the sample thickness from 1.5 to 5.0 mm. The enhancement results should be mainly attributed to the synergistic and complementary effects of the conduction loss and polarization relaxation loss. Our work exhibits that the hierarchical MnONPs@SiCw/RGO hybrid composites might as a promising candidate for high-efficiency microwave absorbers, and provides an effective way for constructing microwave absorber in the future.
机译:迫切要求具有轻质,广泛带宽和高效吸收的优异的电磁(EM)波吸收器来解决EM干扰污染。通过热处理的水热策略成功地合成了MNO纳米粒子/降脂的石墨烯(MNONPS @ SICW / RGO)杂种复合材料,并通过热处理成功地合成了热水策略。结果表明,退火温度对于MNONP的形态至关重要,导致不同的阻抗匹配和衰减常数。相应地,在800℃下获得的MNONPS @ SICW / RGO杂化复合材料呈现最佳的EM波吸收性能,其最小反射损失(RLMIN)达到-54.04dB,17.9GHz,超薄匹配厚度仅为1.59nm,有效吸收带宽(EAB)可以显着扩展到7.4 GHz,覆盖整个KU波段。另外,通过将样品厚度从1.5至5.0mm改变,可以实现具有14.2GHz合格带宽的几乎全带吸收。增强结果应主要归因于传导损耗和极化松弛损失的协同和互补影响。我们的工作表现出分层MNONPS @ SICW / RGO混合复合材料可以作为高效微波吸收器的有希望的候选者,并为将来构建微波吸收器提供了有效的方法。

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