Stacking order, charge doping, and strain-induced switching between AFM and FM in bilayer GdI2

Author:

Li Shujing1ORCID,Hou Yuefei2ORCID,Zhou Mei2,Li Menglei3ORCID,Zheng Fawei4ORCID,Shao Xiaohong1,Zhang Ping25ORCID

Affiliation:

1. College of Mathematics and Physics, Beijing University of Chemical Technology 1 , Beijing 100029, China

2. Institute of Applied Physics and Computational Mathematics 2 , Beijing 100088, China

3. Department of Physics, Capital Normal University 3 , Beijing 100089, China

4. Key Lab of Advanced Optoelectronic Quantum Architecture and Measurement (MOE) and School of Physics, Beijing Institute of Technology 4 , Beijing 100081, China

5. School of Physics and Physical Engineering, Qufu Normal University 5 , Qufu 273165, People’s Republic of China

Abstract

GdI2 monolayer is a promising material for spintronics applications due to its robust room-temperature ferromagnetism and sizable valley polarization. In two-dimensional van der Waals magnets, interlayer magnetic coupling plays a crucial role in device applications. The performance of these devices can be effectively tuned by adjusting the stacking order, charge doping, and strain. By performing first-principles calculations, we have demonstrated that the interlayer magnetic coupling in bilayer GdI2 is highly dependent on the stacking order, which can be tuned between ferromagnetic (FM) and antiferromagnetic orders through lateral shifting. Furthermore, the interlayer magnetic coupling can also be tuned by charge doping and strain, where both electron and hole doping can enhance the FM coupling interaction between layers, and the interlayer FM coupling can be strengthened with increasing biaxial tensile strain. These results show that bilayer GdI2 has rich tunable interlayer magnetic interactions, which can be used in designing interesting spin tunnel field-effect transistor devices.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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