首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >ε-Fe2O3: An Advanced Nanomaterial Exhibiting Giant Coercive Field, Millimeter-Wave Ferromagnetic Resonance, and Magnetoelectric Coupling
【24h】

ε-Fe2O3: An Advanced Nanomaterial Exhibiting Giant Coercive Field, Millimeter-Wave Ferromagnetic Resonance, and Magnetoelectric Coupling

机译:ε-Fe2O3:一种具有巨大矫顽力场、毫米波铁磁共振和磁电耦合的先进纳米材料

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Nanosized iron oxides still attract significant attention within the scientific community, because of their application-promising properties. Among them, ε-Fe2O3 constitutes a remarkable phase, taking pride in a giant coercive field at room temperature, significant ferromagnetic resonance, and coupled magnetoelectric features that are not observed in any other simple metal oxide phase. In this work, we review basic structural and magnetic characteristics of this extraordinary nanomaterial with an emphasis on questionable and unresolved issues raised during its intense research in the past years. We show how a combination of various experimental techniques brings essential and valuable information, with regard to understanding the physicochemical properties of the ε-polymorph of Fe2O3, which remained unexplored for a long period of time. In addition, we recapitulate a series of synthetic routes that lead to the formation of ε-Fe2O3, highlighting their advantages and drawbacks. We also demonstrate how magnetic properties of ε-Fe2O3 can be tuned through the exploitation of various morphologies of ε-Fe2O3 nanosystems, the alignment of ε-Fe2O3 nanoobjects in a supporting matrix, and various degrees of cation substitution. Based on the current knowledge of the scientific community working in the field of ε-Fe2O3, we finally arrive at two main future challenges: (i) the search for optimal synthetic conditions to prepare single-phase ε-Fe2O3 with a high yield, desired size, morphology, and stability; and (ii) the search for a correct description of the magnetic behavior of ε-Fe2O3 at temperatures below the characteristic magnetic ordering temperature.
机译:纳米氧化铁因其具有应用前景的特性,仍然引起了科学界的极大关注。其中,ε-Fe2O3 构成了一个显着的相,在室温下具有巨大的矫顽场、显着的铁磁共振和耦合磁电特性,这是任何其他简单金属氧化物相中都没有观察到的。在这项工作中,我们回顾了这种非凡纳米材料的基本结构和磁性特征,重点介绍了在过去几年的深入研究中提出的可疑和未解决的问题。我们展示了各种实验技术的组合如何带来重要和有价值的信息,以了解Fe2O3的ε多晶型的物理化学性质,这在很长一段时间内仍未被探索。此外,我们总结了一系列导致ε-Fe2O3形成的合成路线,突出了它们的优缺点。我们还展示了如何通过利用 ε-Fe2O3 纳米系统的各种形态、ε-Fe2O3 纳米物体在支持基质中的排列以及不同程度的阳离子取代来调整 ε-Fe2O3 的磁性。基于ε-Fe2O3领域科学界的现有知识,我们最终得出了两个主要的未来挑战:(i)寻找最佳合成条件,以制备具有高产率、所需尺寸、形貌和稳定性的单相ε-Fe2O3;(ii)寻找ε-Fe2O3在低于特征磁订购温度的温度下的磁行为的正确描述。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号