A Review on Developments in Spinel Ferrite Nanomaterials: Synthesis, Characterization, and Diverse Applications

Vivek Kumar, Kakali Sarkar, Saurabh Kumar, Rahul Srivastava, Rajan Kumar
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Abstract

This paper explores a review on the synthesis, characterization, and wide range of uses of doped spinel ferrite nanoparticles, highlighting their important role in biosensors, industrial electronics, water treatment, transducers, transformers, cancer treatment, and magnetic resonance imaging. Substitution in the lattice sites of spinel ferrites with metals improves their electrical and magnetic characteristics, which makes them useful for a variety of applications, including microwave absorbers, magnetic fields, and biomedical devices. Spinel ferrites' physical characteristics can be altered to produce better performance by substitution of metallic atoms. Oxygen vacancies, crystal defects, and unsaturated metal cations exist on the surface of spinel ferrite magnetic nanomaterials. For this reason, hydroelectric cells that dissociate water molecules at room temperature have been fabricated using these materials. The dissociation of water molecules generates electricity in hydroelectric cells, which is revolutionary research of 21st century. The objective of this review is to assist researchers in maximizing the effectiveness of these adaptive materials by offering information on the selection of suitable magnetic ferrites according to anticipated applications.
尖晶石铁氧体纳米材料发展综述:合成、表征和多样化应用
本文综述了掺杂尖晶石铁氧体纳米粒子的合成、表征和广泛用途,重点介绍了它们在生物传感器、工业电子、水处理、换能器、变压器、癌症治疗和磁共振成像中的重要作用。用金属取代尖晶铁氧体的晶格位点可以改善它们的电学和磁学特性,从而使它们在微波吸收器、磁场和生物医学设备等多种应用中发挥作用。尖晶铁氧体的物理特性可以通过金属原子的替代来改变,从而产生更好的性能。尖晶铁氧体磁性纳米材料表面存在氧空位、晶体缺陷和不饱和金属阳离子。因此,利用这些材料制造出了能在室温下解离水分子的水力发电电池。水分子解离在水力发电池中产生电能,这是 21 世纪革命性的研究。本综述旨在帮助研究人员根据预期应用选择合适的磁性铁氧体,从而最大限度地发挥这些自适应材料的功效。
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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