二价阳离子取代纳米晶钴铁氧体的结构、形态、磁性和介电行为综述

IF 0.5 Q4 PHYSICS, MULTIDISCIPLINARY Jordan Journal of Physics Pub Date : 2022-03-01 DOI:10.47011/15.1.9
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引用次数: 0

摘要

摘要:尖晶石铁氧体纳米颗粒因其在磁性冰箱、微波器件、彩色成像、高密度记录介质和磁性流体等各种技术中的应用前景广阔而备受关注。纳米晶钴铁氧体以其独特的特性,如立方磁晶各向异性、高矫顽力、合理的饱和磁化强度、良好的化学稳定性、耐磨性和电绝缘性,得到了广泛的研究。因此,钴铁氧体在高频器件、磁光器件、存储核心、记录介质和自旋电子学领域,以及在生物医学领域,如MRI、药物输送方案和磁热疗,都有自己的应用。铁氧体纳米颗粒的尺寸减小,与块状纳米颗粒相比,其性能存在差异。钴铁氧体物理化学性质的尺寸调制在纳米尺度上给出了独特的响应,允许材料工程在满足不同需求的同时解决其不同应用。本文简要评述了不同阳离子取代对钴尖晶石铁氧体结构、介电和磁性能的重要影响,如Mg2+、Ni2+、Zn2+、Cu2+、In2+。。。这项关于杂化衍生物的尺寸及其分散性、核壳设计、形状、结晶度和表面修饰的研究为铁氧体领域的基础研究以及生长和革命开辟了广阔的前景。关键词:尖晶石铁氧体;结构性能;微观结构性能;磁性能;介电性能。
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A Brief Review on Structural, Morphological, Magnetic and Dielectric Behavior of Divalent Cation-substituted Nanocrystalline Cobalt Ferrite
Abstract: Spinel ferrites nanoparticles have received much more focus due to their promising applications in various technologies, such as magnetic refrigerators, microwave devices, colour imaging, high-density recording media and magnetic fluids. Nano-crystalline cobalt ferrite has been widely studied for its distinctive properties, like cubic magneto crystalline anisotropy, high coercivity, reasonable saturation magnetization, great chemical constancy, wear resistance and electrical insulation. Thus, cobalt ferrite has its own applications in the arena of high-frequency devices, magneto-optical devices, memory cores, recording media and spintronics and also in the biomedical sector, such as MRI, drug delivery schemes and magnetic hyperthermia. Reduced dimensionality of ferrite nanoparticles is having differences in properties when compared to its bulk counterparts. Size modulation of the physico-chemical properties of cobalt ferrite gives a distinctive response in the nanosized scale, permitting for material engineering in order to meet different necessities while addressing its different applications. The present study gives a brief review of significant effects on structural, dielectric and magnetic properties of cobalt spinel ferrite with different cation substitutions, like Mg2+, Ni2+, Zn2+, Cu2+, In2+ ...etc. This study regarding the size and its dispersity, core shell design, shape, crystallinity and surface decoration with hybrid derivatives opens up a wide variety of prospects for elementary studies as well as for growth and revolution in the field of ferrites. Keywords: Spinel ferrite, Structural properties, Microstructural properties, Magnetic properties, Dielectric properties.
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来源期刊
Jordan Journal of Physics
Jordan Journal of Physics PHYSICS, MULTIDISCIPLINARY-
CiteScore
0.90
自引率
14.30%
发文量
38
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