材料科学
微波食品加热
铁磁性
铁磁共振
介电常数
复合数
各向异性
磁导率
电磁辐射
工程物理
磁场
超材料
磁性纳米粒子
吸收(声学)
磁铁
凝聚态物理
材料性能
纳米颗粒
磁各向异性
铁磁材料性能
复合材料
磁化
共振(粒子物理)
光电子学
磁畴
电磁场
领域(数学)
天然材料
纳米技术
铁氧体(磁铁)
球体
磁铁矿
六方晶系
磁电阻
作者
А. Г. Белоус,Sergii Solopan,В. Д. Кухарь,M. A. Popov
标识
DOI:10.1002/adem.202502088
摘要
The rapid progress of wireless technologies and telecommunications requires the development of microwave‐absorbing materials (also known as radio‐absorbing materials or radar‐absorbing materials), since electromagnetic radiation threatens human health and interferes with the operation of electronic devices. Microwave‐absorbing materials are also used to conceal “sensitive” targets, in particular, specific military equipment. This review considers the current state of composite microwave‐absorbing materials engineering, focusing on the materials containing magnetic components. The mechanisms of magnetic absorption and methods for measuring complex permittivity and permeability are described. Two types of ferrites (spinels, hexaferrites) having different natural ferromagnetic resonance frequencies are analyzed. It is pointed out that in the hexagonal structure, cationic substitutions substantially influence the magnitude of crystallographic anisotropy field and may both increase and decrease the ferromagnetic resonance frequency. Such ferrites can be used for microwave‐absorbing materials operating at frequencies up to tens and even 100 GHz. A review describes methods for ferromagnetic nanoparticles synthesis and shows their influence on the microwave absorption through the size and shape of nanoparticles. Examples of various microwave‐absorbing materials are presented, their characteristics are given. From the analysis of literature publications, the directions for future research are formulated, and ways for improving the properties of microwave‐absorbing materials are outlined.
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