Electric Field Control of Spin–Orbit Torque Magnetization Switching in a Spin–Orbit Ferromagnet Single Layer

Author:

Jiang Miao12ORCID,Asahara Hirokatsu2,Ohya Shinobu23,Tanaka Masaaki23

Affiliation:

1. School of Materials Science and Engineering Beijing Institute of Technology Zhongguancun South Street No.5, Haidian Beijing 100081 China

2. Department of Electrical Engineering and Information Systems The University of Tokyo 7‐3‐1 Hongo, Bunkyo‐ku Tokyo 113‐8656 Japan

3. Center for Spintronics Research Network (CSRN) Graduate School of Engineering The University of Tokyo 7‐3‐1 Hongo, Bunkyo‐ku Tokyo 113‐8656 Japan

Abstract

AbstractTo achieve a desirable magnitude of spin–orbit torque (SOT) for magnetization switching and realize multifunctional spin logic and memory devices utilizing SOT, controlling the SOT manipulation is vitally important. In conventional SOT bilayer systems, researchers have tried to control the magnetization switching behavior via interfacial oxidization, modulation of spin–orbit effective field, and effective spin Hall angle; however, the switching efficiency is limited by the interface quality. A current‐induced effective magnetic field in a single layer of a ferromagnet with strong spin–orbit interactions, the so‐called spin–orbit ferromagnet, can be utilized to induce SOT. In spin–orbit ferromagnet systems, electric field application has the potential for manipulating the spin–orbit interactions via carrier concentration modulation. In this work, it is demonstrated that SOT magnetization switching can be successfully controlled via an external electric field using a (Ga, Mn)As single layer. By applying a gate voltage, the switching current density can be solidly and reversibly manipulated with a large ratio of 14.5%, which is ascribed to the successful modulation of the interfacial electric field. The findings of this work help further the understanding of the magnetization switching mechanism and advance the development of gate‐controlled SOT devices.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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