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All-electrical switching of a topological non-collinear antiferromagnet at room temperature.


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.

SUBMITTER: Deng Y 

PROVIDER: S-EPMC9977383 | biostudies-literature | 2023 Feb

REPOSITORIES: biostudies-literature

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All-electrical switching of a topological non-collinear antiferromagnet at room temperature.

Deng Yongcheng Y   Liu Xionghua X   Chen Yiyuan Y   Du Zongzheng Z   Jiang Nai N   Shen Chao C   Zhang Enze E   Zheng Houzhi H   Lu Hai-Zhou HZ   Wang Kaiyou K  

National science review 20220804 2


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 × 10<sup>6</sup> A·cm<sup>-2</sup>, we realize the all-electr  ...[more]

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