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Ultrafine FeNi3 Nanocrystals Embedded in 3D Honeycomb-Like Carbon Matrix for High-Performance Microwave Absorption

机译:嵌入3D蜂窝状碳基体中的超细FeNi3纳米晶体可实现高性能微波吸收

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摘要

The reasonable design of magnetic carbon-based composites is of great significance to improving the microwave absorption (MA) performance of the absorber. In this work, ultrafine FeNi nanocrystals (5–7 nm) embedded in a 3D honeycomb-like carbon matrix (FeNi @C) were synthesized via a facile strategy that included a drying and carbonization process. Because of the soft magnetic property of the FeNi nanocrystals and their unique 3D honeycomb-like structure, the FeNi @C composites exhibit excellent MA abilities. When the filler loading ratio of FeNi @C/paraffin composites is only 30 wt%, the maximum reflection loss (RL) value is −40.6 dB at 10.04 GHz. Meanwhile, an ultra-wide absorption frequency bandwidth of 13.0 GHz (5.0–18.0 GHz over −10 dB) can be obtained in the thickness range of 2.0–4.5 mm, and this means that the absorber can consume 90% of the incident waves. It benefits from the dual loss components, multiple polarizations, and multiple reflections for improving MA performances of FeNi @C composites. These observations suggest that the 3D honeycomb-like FeNi @C composites have broad application prospects in exploring new MA materials that have a wide frequency bandwidth and strong absorption.
机译:磁性碳基复合材料的合理设计对提高吸收器的微波吸收(MA)性能具有重要意义。在这项工作中,通过包括干燥和碳化过程在内的简便策略,合成了嵌入3D蜂窝状碳基质(FeNi @C)中的超细FeNi纳米晶体(5-7 nm)。由于FeNi纳米晶体的软磁特性及其独特的3D蜂窝状结构,FeNi @C复合材料表现出出色的MA能力。当FeNi @ C /石蜡复合材料的填充量仅为30 wt%时,在10.04 GHz时最大反射损耗(RL)值为-40.6 dB。同时,在2.0–4.5 mm的厚度范围内可以获得13.0 GHz(5.0 dB至18.0 GHz,-10 dB以上)的超宽吸收频率带宽,这意味着吸收器可以吸收90%的入射波。它受益于双重损耗成分,多重极化和多重反射,可改善FeNi @C复合材料的MA性能。这些观察结果表明3D蜂窝状FeNi @ C复合材料在探索具有宽频率带宽和强吸收性的新型MA材料方面具有广阔的应用前景。

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