凝聚态物理
反铁磁性
自旋电子学
材料科学
单层
自旋(空气动力学)
克尔效应
霍尔效应
相(物质)
基态
铁磁性
挫折感
自旋霍尔效应
半导体
手性(物理)
拉希巴效应
磁矩
空中骑兵
旋转(数学)
作者
Xinyu Peng,Jiaqi Feng,Xiuxian Yang,Jian Hao,Tingbo Zhang,Caoping Niu,Xiaodong Zhou,Yali Li
摘要
Two-dimensional (2D) magnetic materials have attracted significant attention due to their unique properties and potential applications in spintronics. Using first-principles calculations and group theory analysis, we propose a novel two-dimensional chiral magnetic semiconductor ${\mathrm{FeZrCl}}_{6}$. The monolayer (ML) ${\mathrm{FeZrCl}}_{6}$ is dynamically stable and hosts a coplanar noncollinear 120\ifmmode^\circ\else\textdegree\fi{} antiferromagnetic ground state on a triangular lattice, characterized by vector-spin chirality. The group theory analysis reveals that this unique magnetic order activates the anomalous Hall effect (AHE) and magneto-optical Kerr effect (MOKE). During collective in-plane spin rotation, both the AHC and Kerr rotation angle exhibit $2\ensuremath{\pi}/3$ periodicity dependence on the azimuthal angle $\ensuremath{\varphi}$. Furthermore, out-of-plane spin canting generates a finite scalar-spin chirality, producing an emergent real space Berry phase and thereby inducing a chirality-driven topological Hall effect (THE) and topological magneto-optical Kerr effect (TMOKE) without spin-orbit coupling. These findings not only identify a promising material candidate for antiferromagnetic spintronics but also provide profound insights into the antiferromagnetic anomalous transport phenomena.
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