多铁性
铁电性
材料科学
正交晶系
凝聚态物理
锰铁矿
磁性
自旋电子学
超巨磁阻效应
极化(电化学)
薄膜
电介质
铁磁性
纳米技术
光电子学
结晶学
晶体结构
化学
物理
磁电阻
磁场
物理化学
量子力学
作者
Hao Li,Yali Yang,Shiqing Deng,Linxing Zhang,Sheng Cheng,Er‐Jia Guo,Tao Zhu,Huanhua Wang,Jiaou Wang,Mei Wu,Peng Gao,Hongjun Xiang,Xianran Xing,Jun Chen
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-04-01
卷期号:8 (13)
被引量:29
标识
DOI:10.1126/sciadv.abm8550
摘要
The orthorhombic rare-earth manganates and ferrites multiferroics are promising candidates for the next generation multistate spintronic devices. However, their ferroelectric polarization is small, and transition temperature is far below room temperature (RT). The improvement of ferroelectricity remains challenging. Here, through the subtle strain and defect engineering, an RT colossal polarization of 4.14 μC/cm 2 is achieved in SmFeO 3−δ films, which is two orders of magnitude larger than its bulk and is also the largest one among the orthorhombic rare-earth manganite and ferrite family. Meanwhile, its RT magnetism is uniformly distributed in the film. Combining the integrated differential phase-contrast imaging and density functional theory calculations, we reveal the origin of this superior ferroelectricity in which the purposely introduced oxygen vacancies in the Fe-O layer distorts the FeO 6 octahedral cage and drives the Fe ion away from its high-symmetry position. The present approach can be applied to improve ferroelectric properties for multiferroics.
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