Room‐Temperature Intrinsic Ferromagnetic Chromium Tellurium Compounds with Thickness‐Tunable Magnetic Texture

Author:

Wen Yao1,Liang Shiheng2,Dong Zhuo3,Cheng Ruiqing1,Yin Lei1,He Peng1,Wang Hao1,Zhai Baoxing1,Zhao Yang2,Li Wendi4,Jiang Jian1,Li Zhongwei1,Liu Chuansheng1,Dong Kaifeng4,He Jun156ORCID,Zhang Kai3ORCID

Affiliation:

1. Key Laboratory of Artificial Micro‐ and Nano‐structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan 430072 P. R. China

2. Faculty of Physics and Electronic Science Hubei University Wuhan 430062 P. R. China

3. CAS Key Laboratory of Nanophotonic Materials and Devices and Key Laboratory of Nanodevices and Applications i‐Lab Suzhou Institute of Nano‐Tech and Nano‐Bionics (SINANO) Chinese Academy of Sciences Suzhou 215123 P. R. China

4. School of Automation China University of Geosciences Wuhan 430074 P. R. China

5. Wuhan Institute of Quantum Technology Wuhan 430206 P. R. China

6. International College University of Chinese Academy of Sciences Beijing 100190 P. R. China

Abstract

Abstract2D ferromagnetic chromium tellurides exhibit intriguing spin configurations and high‐temperature intrinsic ferromagnetism, providing unprecedented opportunities to explore the fundamental spin physics and build spintronic devices. Here, a generic van der Waals epitaxial approach is developed to synthesize the 2D ternary chromium tellurium compounds with thicknesses down to mono‐, bi‐, tri‐, and few‐unit cells (UC). The Mn0.14Cr0.86Te evolves from intrinsic ferromagnetic behavior in bi‐UC, tri‐UC, and few‐UC to temperature‐induced ferrimagnetic behavior as the thickness increases, resulting in a sign reversal of the anomalous Hall resistance. Temperature‐ and thickness‐tunable labyrinthine‐domain ferromagnetic behaviors are derived from the dipolar interactions in Fe0.26Cr0.74Te and Co0.40Cr0.60Te. Furthermore, the dipolar‐interaction‐induced stripe domain and field‐induced domain wall (DW) motion velocity are studied, and multibit data storage is realized through an abundant DW state. The magnetic storage can function in neuromorphic computing tasks, and the pattern recognition accuracy can reach up to 97.93%, which is similar to the recognition accuracy of ideal software‐based training (98.28%). Room‐temperature ferromagnetic chromium tellurium compounds with intriguing spin configurations can significantly promote the exploration of the processing, sensing, and storage based on 2D magnetic systems.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hubei Province

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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