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Direct atomic scale determination of magnetic ion partition in a room temperature multiferroic material

机译:直接原子尺度测定室温多铁材料中磁性离子的分配

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摘要

The five-layer Aurivillius phase Bi6TixFeyMnzO18 system is a rare example of a single-phase room temperature multiferroic material. To optimise its properties and exploit it for future memory storage applications, it is necessary to understand the origin of the room temperature magnetisation. In this work we use high resolution scanning transmission electron microscopy, EDX and EELS to discover how closely-packed Ti/Mn/Fe cations of similar atomic number are arranged, both within the perfect structure and within defect regions. Direct evidence for partitioning of the magnetic cations (Mn and Fe) to the central three of the five perovskite (PK) layers is presented, which reveals a marked preference for Mn to partition to the central layer. We infer this is most probably due to elastic strain energy considerations. The observed increase (>8%) in magnetic cation content at the central PK layers engenders up to a 90% increase in potential ferromagnetic spin alignments in the central layer and this could be significant in terms of creating pathways to the long-range room temperature magnetic order observed in this distinct and intriguing material system.
机译:五层Aurivillius相Bi6TixFeyMnzO18系统是单相室温多铁性材料的罕见示例。为了优化其性能并将其用于未来的存储器存储应用,有必要了解室温磁化的起源。在这项工作中,我们使用高分辨率扫描透射电子显微镜,EDX和EELS来发现在理想结构内和缺陷区域内,如何紧密堆积具有相似原子序数的Ti / Mn / Fe阳离子。提供了直接证据表明将磁性阳离子(Mn和Fe)分配到五个钙钛矿(PK)层的中心三层,这表明Mn优先分配到中心层。我们推断这很可能是由于弹性应变能的考虑。在中央PK层观察到的磁性阳离子含量增加(> 8%),导致中央层中潜在的铁磁自旋排列最多增加90%,这对于建立通往长期室温的途径而言可能是重要的在这个独特而有趣的材料系统中观察到的磁序。

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