锰、钛取代钡六铁氧体微波吸收体的磁性和吸收特性

Priyono, A. Manaf
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引用次数: 4

摘要

本文报道了Mn+2和Ti+4离子取代六铁体钡的研究进展。标称组合物BaFe12-2x (MnTi)xO19 (x =3D 0.0;采用机械合金化和连续烧结两步法制备了1.5和2.5)。第一阶段是由Mn+2和Ti+4离子在单相Fe2O3中部分取代得到(Fe, Mn, Ti)2O3。随后是第二阶段,其中BaCO3和(Fe, Mn, Ti)2O3组分机械合金化。在不同的烧结温度下进行连续的固相反应,形成了Mn和Ti取代的钡六方铁氧体。XRD相鉴定证实材料为单相。TEM显微组织分析表明,晶粒极细,尺寸约为30 nm。该区域的电子衍射环在德拜环周围表现出均匀的强度,表明晶粒是随机取向的。对材料磁性特性的评价表明,随着Mn+2和Ti+4离子数量的增加,矫顽力逐渐降低,但总磁化强度的降低也不太显著。推导了微波吸收器在1 ~ 6 GHz频率范围内的反射系数和透射系数以及反射损耗。本文还报道了纳米晶Mn和Ti取代钡铁氧体材料的吸收性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic and absorption characteristics of Mn and Ti subsituted barium hexaferrite for microwave absorber
This paper reports our recent investigation on Mn+2 and Ti+4 ions substituted Barium Hexaferrites. Materials of nominal compositions BaFe12–2x(MnTi)xO19 (x =3D 0.0; 1.5 and 2.5) were prepared through a two-stage process by mechanical alloying and successive sintering. The first stage was the preparation of (Fe, Mn, Ti)2O3 obtained from partial substitution of Mn+2 and Ti+4 ions in a single phase Fe2O3. This was followed by the second stage in which BaCO3 and (Fe, Mn, Ti)2O3 components were mechanically alloyed. A successive solid state reaction at different sintering temperatures has lead to the formation of Mn and Ti substituted barium hex ferrite. Phase identification by XRD confirmed the single phase material. Microstructure by TEM showed grains are extremely fine about 30 nm in size. The electrons diffraction rings of the area shown uniform intensity around Debye rings indicating that grains are randomly oriented. Evaluation on the magnetic characteristic for the materials indicated that coercivity decreased progressively as the number of Mn+2 and Ti+4 ions increased although this was also followed by a less significant decrease in the total magnetization. As to the microwave absorber, reflection and transmission coefficients as well as reflection loss in the frequency range 1–6 GHz were derived. In this paper, Absorption performances of nanocrystalline Mn and Ti substituted barium hex ferrite materials are also reported.
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