反铁磁性
自旋电子学
凝聚态物理
物理
自旋(空气动力学)
磁场
霍尔效应
费米子
电流(流体)
领域(数学)
超短脉冲
拓扑(电路)
铁磁性
量子力学
激光器
纯数学
组合数学
数学
热力学
作者
Yongcheng Deng,Xionghua Liu,Yiyuan Chen,Zongzheng Du,Nai Jiang,Chao Shen,Enze Zhang,Houzhi Zheng,Hai‐Zhou Lu,Kaiyou Wang
摘要
ABSTRACT Non-collinear antiferromagnetic Weyl semimetals, combining the advantages of a zero stray field and ultrafast spin dynamics, as well as a large anomalous Hall effect and the chiral anomaly of Weyl fermions, have attracted extensive interest. However, the all-electrical control of such systems at room temperature, a crucial step toward practical application, has not been reported. Here, using a small writing current density of around 5 × 106 A·cm–2, we realize the all-electrical current-induced deterministic switching of the non-collinear antiferromagnet Mn3Sn, with a strong readout signal at room temperature in the Si/SiO2/Mn3Sn/AlOx structure, and without external magnetic field or injected spin current. Our simulations reveal that the switching originates from the current-induced intrinsic non-collinear spin-orbit torques in Mn3Sn itself. Our findings pave the way for the development of topological antiferromagnetic spintronics.
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