首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Flaky core-shell particles of iron@iron oxides for broadband microwave absorbers in S and C bands
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Flaky core-shell particles of iron@iron oxides for broadband microwave absorbers in S and C bands

机译:用于S和C条带的宽带微波吸收剂的铁@铁氧化物的片状核 - 壳颗粒

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This paper has developed a two-step process integrating mechanical milling with heat-treatment for the preparation of flaky core-shell particles of iron@iron oxides, which show large electromagnetic parameters but low dielectric loss when dispersed at a maximum filling ratio in a dielectric matrix, resulting in broad-band and strong absorption in S and C bands as a thin microwave absorbing material. In this process, prolonging the milling time increases the aspect ratio and specific surface area of the CIPs. This greatly enhances the intrinsic electromagnetic parameters but simultaneously reduces the filling capability in composites, resulting in the occurrence of the largest permeability of the composites at a moderate aspect ratio of the CIPs. The subsequent heat-treatment in air makes surface in-situ oxidation of the flaky CIPs, dramatically decreasing the dielectric loss while keeping the high permeability due to the formation of a Fe3O4 and alpha-FeOOH shell. Consequently, the as-designed composites with flaky CIPs may exhibit reflection loss (RL) < -6 dB in 2.5-8 GHz and a minimum RL of -11 dB at 4 GHz when the thickness is 1.2 mm. This work provides an effective and convenient route to prepare a high performance thin absorber in low frequency region. (C) 2017 Elsevier B.V. All rights reserved.
机译:本文开发了一种两步工艺,将机械铣削与热处理相结合,用于制备铁@氧化铁的片状芯壳颗粒,其显示出大的电磁参数,但是当在电介质中以最大填充比分散时低电磁损耗基质,导致S和C带中的宽带和强吸收作为薄的微波吸收材料。在该过程中,延长铣削时间增加了CIP的纵横比和比表面积。这极大地增强了内在电磁参数,但同时降低了复合材料中的填充能力,导致复合材料的最大渗透率在芯片的中等纵横比中出现。随后的空气中的热处理使得表面原位氧化成型棉布,显着降低介电损耗,同时保持由于Fe3O4和α-FeO​​h壳的形成而保持高渗透性。因此,当厚度为1.2mm时,具有片状CIPS的设计复合材料在2.5-8GHz中,在2.5-8GHz中的反射损耗(RL)<-6dB,最小RL为-11dB,当厚度为1.2mm。这项工作提供了一种有效方便的路线,以在低频区域中制备高性能薄吸收器。 (c)2017年Elsevier B.V.保留所有权利。

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