Investigating the magnetic domain structure and photonics characters of Singled Phased hard ferromagnetic Ferrite MFe3O4 (M= Co2+, Zn2+, Cd2+) Compounds

A. Ibiyemi, G. T. Yusuf, O. Akirinola, M. Orojo, B. Osuporu, J. Lawal
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Abstract

The impact of transition metals on ferrite (iron (III) oxide) compounds is investigated in this study. Ferrite samples were synthesized using the co-precipitation method. X-ray analysis unveiled the presence of the Fe-phase in the trivalent state, showcasing a single-phased cubic spinel framework with a preferred orientation along the (311) reflection plane. Crystallite sizes were determined for CdFe3O4, ZnFe3O4, and CoFe3O4 utilizing the Scherer equation, yielding values of 10.54 nm, 18.76 nm, and 32.63 nm, respectively. Zinc ferrite displayed an intermediate photonic nature compared to cobalt and cadmium ferrite, with cadmium ferrite showing high optical losses and cobalt ferrite exhibiting minimal optical losses. EDX analysis confirmed the presence of Zn2+, Co2+, Fe3+, Cd2+, and O2? ions in the correct ratios, supporting the intended stoichiometric composition. Optical assessment revealed that CoFe3O4 nanoparticles are well-suited for optoelectronic devices, ultraviolet detectors, and infrared (IR) detectors. VSM measurements of cobalt ferrite exhibited higher coercivity and magnetic saturation compared to other samples. Photoluminescence (PL) spectroscopy revealed multiple colors, including cyan, green, and yellow, at different wavelengths for the ferrite samples. These findings suggest that the synthesized samples are suitable materials for high-frequency devices owing to their robust magnetic properties. Cadmium ferrite displayed a multi-magnetic domain structure, contrasting with the single-magnetic domain structure observed in zinc and cobalt ferrite.
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研究单相硬铁磁性铁氧体 MFe3O4(M= Co2+、Zn2+、Cd2+)化合物的磁畴结构和光子特性
本研究探讨了过渡金属对铁氧体(铁(III)氧化物)化合物的影响。铁氧体样品采用共沉淀法合成。X 射线分析揭示了三价态铁相的存在,展示了沿 (311) 反射面优先取向的单相立方尖晶石框架。利用舍勒方程测定了 CdFe3O4、ZnFe3O4 和 CoFe3O4 的晶体尺寸,结果分别为 10.54 nm、18.76 nm 和 32.63 nm。与钴铁氧体和镉铁氧体相比,锌铁氧体显示出中间光子性质,镉铁氧体显示出较高的光学损耗,而钴铁氧体显示出最小的光学损耗。电致发光分析证实了 Zn2+、Co2+、Fe3+、Cd2+ 和 O2?离子以正确的比例存在,支持预期的化学成分。光学评估显示,CoFe3O4 纳米粒子非常适合用于光电设备、紫外线探测器和红外线(IR)探测器。与其他样品相比,钴铁氧体的 VSM 测量显示出更高的矫顽力和磁饱和度。光致发光(PL)光谱显示了铁氧体样品在不同波长下的多种颜色,包括青色、绿色和黄色。这些发现表明,合成的样品具有强大的磁性能,是高频器件的合适材料。镉铁氧体显示出多磁畴结构,与锌和钴铁氧体的单磁畴结构形成鲜明对比。
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