Preparation condition, composition and post-preparation thermal treatment assisted control of structural and magnetic properties of spinel nano ferrites

S. Kane, R. Verma, P. Tiwari, F. Mazaleyrat
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引用次数: 3

Abstract

Study of ferrites has always been a topic of immense significance from the point of view of their magnetic applications, including their usage in high frequency devices, microwave devices, bioscience. For the same, there is a need to understand magnetic properties, and their correlation with structural properties, to be able to have a suitable material for a specific application. This article reviews various spinel ferrite systems in the framework of a specific synthesis protocol (with variable synthesis parameters, including microwave assisted green synthesis etc.), a precise composition (with possibilities for its modification), and usage of post-preparation thermal treatment (e. g. - conventional furnace annealing, microwave sintering, park plasma sintering, ion irradiation etc.). Complimentary information on structural (by x-ray diffraction ‘XRD’); magnetic (by vibration sample magnetometer ‘VSM’) properties as well are described. Representative examples of ferrite nano particles are also given, depicting the effect of composition, synthesis protocol, and post-preparation treatment (including an overview of various spinel nanoparticles in tabular form), showing modification of structural, magnetic properties, correlation between them is illustrated.Study of ferrites has always been a topic of immense significance from the point of view of their magnetic applications, including their usage in high frequency devices, microwave devices, bioscience. For the same, there is a need to understand magnetic properties, and their correlation with structural properties, to be able to have a suitable material for a specific application. This article reviews various spinel ferrite systems in the framework of a specific synthesis protocol (with variable synthesis parameters, including microwave assisted green synthesis etc.), a precise composition (with possibilities for its modification), and usage of post-preparation thermal treatment (e. g. - conventional furnace annealing, microwave sintering, park plasma sintering, ion irradiation etc.). Complimentary information on structural (by x-ray diffraction ‘XRD’); magnetic (by vibration sample magnetometer ‘VSM’) properties as well are described. Representative examples of ferrite nano particles are also given, depic...
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尖晶石纳米铁氧体的制备条件、组成和制备后热处理有助于控制其结构和磁性能
从铁氧体的磁性应用角度来看,铁氧体的研究一直是一个具有重要意义的课题,包括在高频器件、微波器件和生物科学中的应用。同样,需要了解磁性及其与结构性质的相关性,以便能够为特定应用提供合适的材料。本文综述了各种尖晶石铁氧体体系在特定合成方案(具有可变合成参数,包括微波辅助绿色合成等),精确组成(具有修改的可能性)以及制备后热处理(例如-传统炉退火,微波烧结,等离子体烧结,离子辐照等)的框架下的应用。补充结构信息(通过x射线衍射' XRD ');磁性(通过振动样品磁强计' VSM ')特性也进行了描述。本文还给出了具有代表性的铁氧体纳米粒子的例子,描述了组成、合成方案和制备后处理的影响(包括各种片状尖晶石纳米粒子的概述),显示了结构、磁性能的修饰,并说明了它们之间的相关性。从铁氧体的磁性应用角度来看,铁氧体的研究一直是一个具有重要意义的课题,包括在高频器件、微波器件和生物科学中的应用。同样,需要了解磁性及其与结构性质的相关性,以便能够为特定应用提供合适的材料。本文综述了各种尖晶石铁氧体体系在特定合成方案(具有可变合成参数,包括微波辅助绿色合成等),精确组成(具有修改的可能性)以及制备后热处理(例如-传统炉退火,微波烧结,等离子体烧结,离子辐照等)的框架下的应用。补充结构信息(通过x射线衍射' XRD ');磁性(通过振动样品磁强计' VSM ')特性也进行了描述。文中还给出了具有代表性的铁氧体纳米粒子的例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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