首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Amorphous FexB100-x nanostructures: Facile synthesis, magnetic properties and their applications as enhanced microwave absorbers at S- and C-bands
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Amorphous FexB100-x nanostructures: Facile synthesis, magnetic properties and their applications as enhanced microwave absorbers at S- and C-bands

机译:非晶态FexB100-x纳米结构:简便的合成,磁性能及其在S和C波段作为增强型微波吸收剂的应用

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Amorphous FexB100-x (64 <= x <= 91) nanostructures with tunable boron contents and crystallinities were fabricated through a wet chemical reduction method by simply altering the adding rate of iron salt. XRD patterns and Mossbauer spectra show that the amorphous components in the FexB100-x nanostructures increase as the boron content are improved. Magnetic properties reveal that the saturation magnetization and coercivity of the samples strongly depend on the boron contents, and the amorphous one performs lower coercivity and remarkable soft magnetic behavior. The high -frequency electromagnetic characteristics of the representative crystalline and amorphous FexB100-x nanomaterials were investigated. In comparison with the crystallized FexB100-x nanostructures, the amorphous sample displays improved complex permeability and reduced complex permittivity, which is mainly originated from the lower anisotropy field and high resistivity of the amorphous phase. The microwave absorption properties show that the amorphous sample has a maximum reflection loss of -39.4 dB at 4.2 GHz with a matching thickness of only 2.0 mm. Compared with the crystallized one, the amorphous sample shows a dramatic enhancement of microwave absorption properties, which is mainly due to that its relatively high permeability and low permittivity are beneficial for the impedance matching. These results suggest that the amorphous nanostructures are good candidates as high efficient microwave absorbing materials. (C) 2016 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:通过简单地改变铁盐的添加率,通过湿式化学还原法可以制备出具有可调的硼含量和结晶度的非晶态FexB100-x(64 <= x <= 91)纳米结构。 XRD图谱和Mossbauer光谱表明,随着硼含量的提高,FexB100-x纳米结构中的非晶态组分增加。磁性能表明,样品的饱和磁化强度和矫顽力很大程度上取决于硼的含量,而非晶态样品的矫顽力较低,并且具有明显的软磁性能。研究了代表性的晶体和非晶FexB100-x纳米材料的高频电磁特性。与结晶的FexB100-x纳米结构相比,非晶样品显示出更高的复磁导率和降低的复介电常数,这主要是由于非晶相的各向异性较低且电阻率较高。微波吸收特性表明,无定形样品在4.2 GHz时的最大反射损耗为-39.4 dB,匹配厚度仅为2.0 mm。与晶态样品相比,非晶态样品显示出微波吸收性能的显着提高,这主要是由于其相对较高的磁导率和低介电常数有利于阻抗匹配。这些结果表明,无定形纳米结构是高效微波吸收材料的良好候选者。 (C)2016日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。版权所有。

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