Synthesis of nanoparticles of Fe, Co, and Ni oxides derived of metal–organic framework (MOF), and their combination with carbonyl iron for application in the K-band of frequencies as a microwave-absorbing material

材料科学 反射损耗 纳米颗粒 羰基铁 微波食品加热 元素分析 非阻塞I/O 衍射 化学工程 反射(计算机编程) 扫描电子显微镜 光谱学 介电谱 分析化学(期刊) 纳米技术 产量(工程) 表征(材料科学) 网络分析仪(电气) 纳米- 反射系数 光电子学 阻抗匹配 磁性纳米粒子 太赫兹辐射 电阻抗 透射电子显微镜 纳米复合材料 铁磁性 电磁辐射
作者
Felipe M. Yamamoto,Maria Tereza Fabbro,Braulio H. K. Lopes,Giovanna S. Cembranelli,Mauricio R. Baldan,Sérgio Luiz Mineiro,Luís P. S. Santos
出处
期刊:Journal of Materials Science: Materials in Electronics [Springer Science+Business Media]
卷期号:37 (7) 被引量:1
标识
DOI:10.1007/s10854-026-16869-x
摘要

Abstract This work introduces an innovative synthesis of α-Fe 2 O 3 (Fe), Co 3 O 4 (Co), and NiO (Ni) nanoparticles based in the following metal–organic frameworks (MOFs): Fe-MOF, Co-MOF, and Ni-MOF, respectively. These nanoparticles were combined with carbonyl iron (CI) via solid-state synthesis for use as microwave-absorbing materials (MAMs) in the K-band particularly within the 24–26 GHz frequency range. The synthesized materials were characterized structurally by X-ray diffraction (XRD), morphologically by scan electronic microscopy (SEM), and elemental qualitatively the composition by electron dispersive spectroscopy (EDS). The electromagnetic (EM) characterization was performed using a vector network analyzer (VNA) with Keysight ® software to extract the complex relative electric permittivity, and complex magnetic permeability via the Nicholson Ross Weir (NRW) method based on measured S-parameters. Additionally, reflectivity-based EM simulations were conducted to assess impedance matching and determine optimal absorb thicknesses. The results indicate that each synthetized material exhibits distinct electromagnetic behavior, and the proper combination of composition and thickness can yield promising MAM composite. Notably, the combination between nano Fe/ CI achieved a reflection loss lower than −15 dB at a thickness of 1.20 mm, while Co/CI and Ni/CI exhibited superior performance, with minimum reflection loss of −23,45 dB and −26,21 dB respectively. This work provides a novel approach to developing advanced composites for K-band microwave absorption, addressing the growing demand for effective EM pollution.
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