Direct Observation of Modulation Structure in Room Temperature Multiferroic Bi 4.2K 0.8Fe 2O 9+δ

Lu Zhang, H. Tian, S. Dong, Dong Yang, Xiaoguang Li, J. Li, Jianqi Li, Huaixin Yang
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引用次数: 1

Abstract

Abstract The coexistence and coupling between alternatively stacked layers with different functional properties often give rise to exotic physical phenomena, such as high-temperature superconductivity, multiferroic behavior, and giant thermoelectric performance, which are tightly linked with the intrinsic microstructures. Here we unambiguously uncover the structural modulations in multiferroic Bi4.2K0.8Fe2O9+δ (BKFO) nanobelts with a magnetoelectric–dielectric superlattice by scanning transmission electron microscopy (STEM). The octahedrons in the perovskite layers are identified as FeO6 and the ordered arrangements of the Bi and K cations are clearly determined. Quantitative measurements of the positions of the Bi columns indicate that the displacive modulations can be decomposed into a transverse wave and a longitudinal wave, whose amplitudes and phases are layer-dependent. This study may help to understand and optimize the magnetoelectric coupling effect in BKFO.
室温多铁Bi 4.2K 0.8Fe 2O +δ调制结构的直接观察
具有不同功能特性的交替堆叠层之间的共存和耦合,往往会产生与材料的内在微观结构密切相关的特殊物理现象,如高温超导性、多铁性和巨热电性能等。本文通过扫描透射电子显微镜(STEM)明确地揭示了具有磁电介质超晶格的多铁Bi4.2K0.8Fe2O9+δ (BKFO)纳米带的结构调制。钙钛矿层中的八面体被识别为FeO6, Bi和K阳离子的有序排列也被清楚地确定。Bi柱位置的定量测量表明,位移调制可以分解为横波和纵波,其振幅和相位与层相关。该研究有助于理解和优化BKFO中磁电耦合效应。
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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