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Electromagnetic wave absorption properties of Fe/MgO composites synthesized by a simple ultrasonic spray pyrolysis method

机译:简单超声喷雾热解法合成Fe / MgO复合材料的电磁波吸收特性

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Electromagnetic (EM) wave absorbing materials consisting of iron (Fe) nanoparticles supported by magnesium oxide (MgO) matrix were synthesized by ultrasonic spray pyrolysis (USP) and subsequent hydrogen reduction. The Fe nanoparticles were formed by the selective reduction of iron oxide in the as-pyrolyzed powder, itself acting as a microreactor, and were successfully embedded in or at the MgO surface, allowing for magneto-dielectric structures without aggregation. Fe content in the composite particles was controlled only by the molar ratio of the precursor solution ([Fe3+]:[Mg2+]). The remarkable shielding effectiveness reached -65.6 dB at 12 GHz with a corresponding thickness of 1.5mm and an absorption bandwidth for reflection loss (RL) of less than -20 dB is about 7.8 GHz. This design approach can be extended to realize magneto-dielectric materials with tailored absorption frequencies of high bandwidth due to the combination of the well-dispersed decoration of magnetic particles with controlled content and effective insulation. This type of material would be well suited for use in the research community and industry alike due to the reduction in energy required for synthesis and attendant oxidation losses.
机译:通过超声喷雾热解(USP)和随后的氢还原反应,合成了由铁(Fe)纳米颗粒组成的电磁(EM)吸波材料,该纳米颗粒由氧化镁(MgO)支撑。 Fe纳米粒子是通过选择性还原还原后的粉末(本身充当微反应器)中的氧化铁形成的,并成功地嵌入MgO表面或MgO表面,从而实现了磁电介质结构而不会聚集。仅通过前体溶液的摩尔比([Fe 3+]:[Mg 2+])控制复合颗粒中的Fe含量。显着的屏蔽效果在12 GHz时达到-65.6 dB,相应的厚度为1.5mm,反射损耗(RL)的吸收带宽小于-20 dB约为7.8 GHz。这种设计方法可以扩展,以实现磁电介质材料的高带宽吸收,因为结合了分散良好的磁粉含量可控的含量和有效的绝缘性能,从而可以实现高带宽的定制吸收频率。由于减少了合成所需的能量和随之而来的氧化损失,这种类型的材料非常适合在研究界和行业中使用。

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