Modifying BiFeO3 (BFO) for multifunctional applications - A review

Rajata Kumar Mansingh, R. Mishra, T. Dash
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引用次数: 4

Abstract

Through an extensive literature review the cation substitution effect on multiferroic behavior of BiFeO3 commonly known as BFO has been analyzed. A deep introspection has been made to find the doping effect on its structural, micro structural and electrical microstructure which consequently changes its dielectric, ferroelectric, electrical and magnetic, multiferroic and other properties. A systematic analysis has been made to find how the doping at both A and B site of its ABO3 perovskite structure causes a compositional driven structural change resulting in improved multiferroic properties. In this review attempt has been made to reveal the physics behind the major issues in BFO like single phase preparation, oxygen ion vacancy, leakage current, suppressed latent magnetization in spin cycloid, low value of electrical polarization, low magnetoelectrical coupling, microwave properties and how these issues have been addressed so far by modifying BFO. Many theoretical and experimental investigations on BFO, modified BFO and its composite establish a competitive mechanism due to which improved ferroelectricity is achieved at cost of magnetism or improved magnetism is achieved at the cost of ferroelectricity. Thus, the desirable multiferroic properties have not yet achieved completely to make the material device ready. Finally, a detailed analysis have been made to explore all possible applications of these materials taking into all the physical parameters achieved so far in these materials to make them truly multifunctional and on the basis of this study, we have proposed how to modify the BFO to achieve a new generation multifunctional material.
改性BiFeO3 (BFO)用于多功能应用-综述
通过广泛的文献回顾,分析了阳离子取代对BiFeO3(俗称BFO)多铁行为的影响。对掺杂对其结构、微观结构和电学微观结构的影响进行了深入的反思,从而改变了其介电、铁电、电磁性、多铁性等性能。系统分析了ABO3钙钛矿结构的A位和B位掺杂是如何引起成分驱动的结构变化,从而提高了多铁性能的。本文试图揭示BFO中存在的主要问题,如单相制备、氧离子空缺、漏电流、抑制自旋摆线的潜在磁化、低极化值、低磁电耦合、微波特性等背后的物理原理,以及迄今为止如何通过改性BFO来解决这些问题。许多关于BFO、改性BFO及其复合材料的理论和实验研究都建立了一种竞争机制,即以磁性为代价获得改善的铁电性,或以铁电为代价获得改善的磁性。因此,所需的多铁性尚未完全实现,使材料器件准备就绪。最后,详细分析了这些材料的所有可能应用,考虑到这些材料迄今为止所获得的所有物理参数,以使它们真正具有多功能,并在此研究的基础上,我们提出了如何改性BFO以实现新一代多功能材料。
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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