多铁性
反铁磁性
旋转
化学
凝聚态物理
联轴节(管道)
磁场
磁电效应
极化(电化学)
磁性结构
电场
结晶学
磁化
物理
铁电性
物理化学
材料科学
光电子学
电介质
冶金
量子力学
作者
Jiahua Min,Shuhan Zheng,Jingwen Gong,Xiyu Chen,Fei Liu,Yunlong Xie,Qian Zhang,Zhen Ma,Meifeng Liu,Xiuzhang Wang,Hong Li,Jun‐Ming Liu
标识
DOI:10.1021/acs.inorgchem.1c01935
摘要
Searching for novel magnetoelectric (ME) materials has been one of the major issues of multiferroics. In this work, we present a systematic research study on garnet Mn3Al2Ge3O12, including structural, magnetic, heat capacity, and ME characterizations. Below the Néel temperature TN ∼ 6.8 K, Mn2+ spins form a long-range antiferromagnetic order, and a magnetic field H-driven electric polarization P is identified simultaneously. The relationship between P and H is nonlinear under low H and becomes linear under high H. Such transition is believed to originate from the H-induced variation of the magnetic structure. In addition, the P reaches 0.6 μC/m2 under μ0H = 9 T, corresponding to an ME coupling coefficient of αME ∼ 0.08 ps/m under high H. The small αME is attributed to the weak spin-orbit coupling and weak magnetic interactions in Mn3Al2Ge3O12. Furthermore, we realize the stable control of P by periodically varying H, which is crucial for potential application. We provide a rare case that a garnet material shows a first-order ME effect.
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