Anomalous Tunneling Magnetoresistance Oscillation and Electrically Tunable Tunneling Anisotropic Magnetoresistance in Few‐Layer CrPS4

Author:

Fu ZhuangEn12,Huang Hong‐Fei3,Samarawickrama Piumi12,Watanabe Kenji45,Taniguchi Takashi45,Wang Wenyong1,Ackerman John6,Zang Jiadong7,Yu Jie‐Xiang3,Tian Jifa12ORCID

Affiliation:

1. Department of Physics and Astronomy University of Wyoming Laramie WY 82071 USA

2. Center for Quantum Information Science and Engineering University of Wyoming Laramie WY 82071 USA

3. School of Physical Science and Technology Soochow University Suzhou 215006 China

4. Research Center for Electronic and Optical Materials National Institute for Materials Science 1‐1 Namiki Tsukuba 305‐0044 Japan

5. Research Center for Materials Nanoarchitectonics National Institute for Materials Science 1‐1 Namiki Tsukuba 305‐0044 Japan

6. Department of Chemical and Biomedical Engineering University of Wyoming Laramie WY 82071 USA

7. Department of Physics and Astronomy University of New Hampshire Durham NH 03824 USA

Abstract

Abstract2D van der Waals (vdW) magnets with layer‐dependent magnetic states and/or diverse magnetic interactions and anisotropies have attracted extensive research interest. Despite the advances, a notable challenge persists in effectively manipulating the tunneling anisotropic magnetoresistance (TAMR) of 2D vdW magnet‐based magnetic tunnel junctions (MTJs). Here, this study reports the novel and anomalous tunneling magnetoresistance (TMR) oscillations and pioneering demonstration of bias and gate voltage controllable TAMR in 2D vdW MTJs, utilizing few‐layer CrPS4. This material, inherently an antiferromagnet, transitions to a canted magnetic order upon application of external magnetic fields. Through TMR measurements, this work unveils the novel layer‐dependent oscillations in the tunneling resistance for few‐layer CrPS4 devices under both out‐of‐plane and in‐plane magnetic fields, with a pronounced controllability via gate voltage. Intriguingly, this study demonstrates that both the polarity and magnitude of TAMR in CrPS4 can be effectively tuned through either a bias or gate voltage. The mechanism behind this electrically tunable TAMR is further elucidated through first‐principles calculations. The implications of the findings are far‐reaching, providing new insights into 2D magnetism and opening avenues for the development of innovative spintronic devices based on 2D vdW magnets.

Funder

National Science Foundation

National Natural Science Foundation of China

Publisher

Wiley

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