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Hydrothermal Synthesis and Microwave Absorption Properties of Nickel Ferrite/Multiwalled Carbon Nanotubes Composites

机译:镍铁氧体/多壁碳纳米管复合材料的水热合成和微波吸收性能

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It is well accepted that the microwave absorption performance of ferrite can be enhanced via the hybridization. However, it is still very challenging to design the hierarchical nanostructure of ferrite hybrids to fabricate wave absorbing composites with both the high efficiency and lightweight. Herein, we successfully realize the in-situ synthesis of nickel ferrite/multiwalled carbon nanotubes (NiFe2O4/MWCNTs) hybrids with a large-scale production by the hydrothermal method. The structural characteristics, morphology, electromagnetic and microwave absorption properties were analyzed by X-ray diffraction, scanning electron microscope and vector network analyzer. The morphological study shows that NiFe2O4 nanoparticles with a small size (tens of nanometers) are coated on the MWCNTs, leading to a three-dimensional hierarchical nanostructure. The NiFe2O4/MWCNTs hybrids show satisfied microwave absorption properties. Typically, the optimized sample shows the minimum reflection loss of ?19 dB at 11.3 GHz, and the bandwidth of the reflectivity below ?10 dB is 2.5 GHz with a thin thickness of 1.5 mm. This result shall be due to the improved dielectric losses or interface polarization etc. Our results demonstrate a facile approach for the design of ferrite-based microwave absorber to meet the requirements of lightweight, thin-thickness and high efficiency.
机译:很好地接受了铁氧体的微波吸收性能通过杂交可以提高。然而,设计铁素体杂交机的分层纳米结构仍然非常具有挑战性,以制造具有高效率和轻质的波浪吸收复合材料。这里,我们通过水热法成功地实现了镍铁氧体/多壁碳纳米管(NiFe2O4 / MWCNT)杂种的原位合成。通过X射线衍射,扫描电子显微镜和矢量网络分析仪分析结构特征,形态,电磁和微波吸收性能。形态学研究表明,具有小尺寸(数十纳米)的NiFe2O4纳米颗粒在MWCNT上涂覆,导致三维等级纳米结构。 NiFe2O4 / MWCNTS杂交种显示满意的微波吸收性能。通常,优化的样本显示11.3 GHz的最小反射损耗(11.3 GHz),下面的反射率的带宽是2.5GHz,厚度为1.5mm。该结果应是由于改进的介电损耗或界面极化等。我们的结果表明了一种适用于基于铁氧体的微波吸收器的便利方法,以满足轻质,薄厚度和高效率的要求。

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