凝聚态物理
霍尔效应
反铁磁性
旋转
极地的
Berry连接和曲率
铁电性
铁磁性
材料科学
半导体
联轴节(管道)
磁场
物理
光电子学
几何相位
电介质
量子力学
天文
冶金
作者
Seojin Kim,Jihang Zhu,M. M. Piva,Marcus Schmidt,Dorsa S. Fartab,A. P. Mackenzie,M. Baenitz,M. Nicklas,H. Rösner,Ashley M. Cook,Rafael González‐Hernández,Libor Šmejkal,Haijing Zhang
标识
DOI:10.1002/advs.202307306
摘要
Abstract Progress in magnetoelectric materials is hindered by apparently contradictory requirements for time‐reversal symmetry broken and polar ferroelectric electronic structure in common ferromagnets and antiferromagnets. Alternative routes can be provided by recent discoveries of a time‐reversal symmetry breaking anomalous Hall effect (AHE) in noncollinear magnets and altermagnets, but hitherto reported bulk materials are not polar. Here, the authors report the observation of a spontaneous AHE in doped AgCrSe 2 , a layered polar semiconductor with an antiferromagnetic coupling between Cr spins in adjacent layers. The anomalous Hall resistivity 3 is comparable to the largest observed in compensated magnetic systems to date, and is rapidly switched off when the angle of an applied magnetic field is rotated to ≈80° from the crystalline c ‐axis. The ionic gating experiments show that the anomalous Hall conductivity magnitude can be enhanced by modulating the p ‐type carrier density. They also present theoretical results that suggest the AHE is driven by Berry curvature due to noncollinear antiferromagnetic correlations among Cr spins, which are consistent with the previously suggested magnetic ordering in AgCrSe 2 . The results open the possibility to study the interplay of magnetic and ferroelectric‐like responses in this fascinating class of materials.
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