Multi‐Level Switching of Spin‐Torque Ferromagnetic Resonance in 2D Magnetite

Author:

Jia Zhiyan12,Chen Qian34,Wang Wenjie25,Sun Rong2,Li Zichao6,Hübner René6,Zhou Shengqiang6,Cai Miming7,Lv Weiming4,Yu Zhipeng4,Zhang Fang1,Zhao Mengfan1,Tian Sen1,Liu Lixuan1,Zeng Zhongming4,Jiang Yong1ORCID,Wang Zhongchang28ORCID

Affiliation:

1. Institute of Quantum Materials and Devices School of Materials Science and Engineering Tiangong University Tianjin 300387 China

2. International Iberian Nanotechnology Laboratory (INL) Braga 4715‐330 Portugal

3. Key Laboratory of Quantum Materials and Devices of Ministry of Education School of Physics Southeast University Nanjing 211189 China

4. Key Laboratory of Nanodevices and Applications Suzhou Institute of Nano‐Tech and Nano‐Bionics CAS Suzhou 215123 China

5. College of Science China Agricultural University Beijing 100083 China

6. Institute of Ion Beam Physics and Materials Research Helmholtz‐Zentrum Dresden‐Rossendorf Bautzner Landstrasse 400 D‐01328 Dresden Germany

7. Department of Physics Beijing Normal University Beijing 100875 China

8. School of Chemistry Beihang University Beijing 100191 China

Abstract

Abstract2D magnetic materials hold substantial promise in information storage and neuromorphic device applications. However, achieving a 2D material with high Curie temperature (TC), environmental stability, and multi‐level magnetic states remains a challenge. This is particularly relevant for spintronic devices, which require multi‐level resistance states to enhance memory density and fulfil low power consumption and multi‐functionality. Here, the synthesis of 2D non‐layered triangular and hexagonal magnetite (Fe3O4) nanosheets are proposed with high TC and environmental stability, and demonstrate that the ultrathin triangular nanosheets show broad antiphase boundaries (bAPBs) and sharp antiphase boundaries (sAPBs), which induce multiple spin precession modes and multi‐level resistance. Conversely, the hexagonal nanosheets display slip bands with sAPBs associated with pinning effects, resulting in magnetic‐field‐driven spin texture reversal reminiscent of “0” and “1” switching signals. In support of the micromagnetic simulation, direct explanation is offer to the variation in multi‐level resistance under a microwave field, which is ascribed to the multi‐spin texture magnetization structure and the randomly distributed APBs within the material. These novel 2D magnetite nanosheets with unique spin textures and spin dynamics provide an exciting platform for constructing real multi‐level storage devices catering to emerging information storage and neuromorphic computing requirements.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

European Research Executive Agency

Publisher

Wiley

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