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Published on: March 24, 2019
Perpendicular Néel Vector Detection of Monolayer Collinear Antiferromagnets with Spin-Layer Coupling
Li Deng1, Fei Wang1, Xiang Yin1
1Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), School of Material Science and Engineering, Northeastern University, Shenyang 110819, China.
None:
The precise detection of a perpendicular Néel vector in collinear antiferromagnetic (AFM) materials has long been expected for advancing two-dimensional AFM spintronics. Here, we proposed the perpendicular Néel vector detection using the layer Hall effect in collinear antiferromagnets down to the monolayer limit. Through materials screening, the Co2S2 is identified as a prototypical AFM monolayer with the spin-layer coupling and perpendicular magnetic anisotropy. Thanks to the electrically engineered layer-locked band edges and Berry curvatures from spin-layer coupling, a sizable layer-polarized anomalous Hall conductivity of σxy up to ∼110 S/cm is obtained in monolayer Co2S2. Intriguingly, the sign of σxy changes when the Néel vector is reversed, providing an efficient route for detecting the AFM order. Moreover, the achievement of the Néel vector detection via the layer Hall effect is further demonstrated in altermagnetic monolayer Ca(CoN)2. The present findings open an avenue to explore the Néel vector detection for atomic-scale AFM materials and spintronic devices.
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