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六角铁氧体( = Tb和Ho)中磁相变诱导的铁电性质调制

Magnetic Phase Transition-Induced Modulation of Ferroelectric Properties in Hexagonal FeO ( = Tb and Ho).

作者信息

Liu Yaoming, Chen Binjie, Hamasaki Yosuke, Gong Lizhikun, Ohta Hiromichi, Katayama Tsukasa

机构信息

Graduate School of Information Science and Technology, Hokkaido University, N14W9, Kita, Sapporo 060-0814, Japan.

Department of Applied Physics, National Defense Academy, Yokosuka 239-8686, Japan.

出版信息

ACS Appl Mater Interfaces. 2024 Apr 10;16(14):17832-17837. doi: 10.1021/acsami.4c02475. Epub 2024 Apr 1.

Abstract

Hexagonal rare-earth iron oxides (FeO) exhibit spontaneous magnetization and room-temperature ferroelectricity simultaneously. However, achieving a large magnetoelectric coupling necessitates further exploration. Herein, we report the impact of the magnetic phase transition on the ferroelectric properties of epitaxial FeO ( = Tb and Ho) films prepared by pulsed laser deposition. The metastable -FeO phase is successfully stabilized with high crystallinity and low leakage current due to the ITO buffer layer, making it possible to investigate the ferroelectric properties. The -TbFeO film exhibits a magnetic-field-induced transition from antiferromagnetic (AFM) to weak ferromagnetic (wFM) phases below 30 K, while also exhibiting ferroelectricity at 300 K. The dielectric constants change with the magnetic phase transition, demonstrating hysteresis in the magnetocapacitance. In contrast, the -HoFeO film exhibits antiferroelectric-like behavior and an AFMwFM phase transition. Notably, the -HoFeO film shows a rapid increase in the remnant polarization during the AFM-wFM phase transition accompanied by an increase in the ferroelectric component. Considering the strong connection between the antiferroelectric behavior in the FeO system and the ferroelectric domain wall motion, this considerable modification of ferroelectric properties during the magnetic phase transition is probably due to the faster movement of the ferroelectric domain walls in the wFM phase induced by the clamping effect. Our findings indicate the effectiveness of magnetic phase transitions in enhancing the magnetoelectric coupling, particularly when utilizing domain wall clamping properties.

摘要

六方稀土铁氧化物(FeO)同时表现出自发磁化和室温铁电性。然而,要实现大的磁电耦合还需要进一步探索。在此,我们报道了磁相变对外延FeO( = Tb和Ho)薄膜铁电性能的影响,这些薄膜是通过脉冲激光沉积制备的。由于ITO缓冲层,亚稳的 -FeO相成功地以高结晶度和低漏电流得以稳定,从而能够研究其铁电性能。-TbFeO薄膜在30 K以下表现出磁场诱导的从反铁磁(AFM)到弱铁磁(wFM)相的转变,同时在300 K时也表现出铁电性。介电常数随磁相变而变化,显示出磁电容中的滞后现象。相比之下,-HoFeO薄膜表现出类反铁电行为和AFM - wFM相变。值得注意的是,-HoFeO薄膜在AFM - wFM相变期间剩余极化迅速增加,同时铁电分量也增加。考虑到FeO系统中的反铁电行为与铁电畴壁运动之间的紧密联系,磁相变期间铁电性能的这种显著变化可能是由于夹持效应诱导的wFM相中更快的铁电畴壁运动。我们的研究结果表明磁相变在增强磁电耦合方面的有效性,特别是在利用畴壁夹持特性时。

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