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Lithium-Induced Thickness-Dependent Magnetic Structure Transition in 2D Fe3GaTe2

  • Junhai Ren
  • , Yufeng Gao
  • , Huiji Hu
  • , Zhilin Li
  • , Liguo Zhang
  • , Su Kong Chong
  • , Huaxue Zhou
  • , Chongli Yang
  • , Bo Bai
  • , Zhihai Cheng
  • , Ping Li
  • , Katsumi Tanigaki
  • Beijing Academy of Quantum Information Sciences
  • CAS - Institute of Physics
  • University of Chinese Academy of Sciences
  • Renmin University of China
  • Guangdong Provincial Key Laboratory of Extreme Conditions

科研成果: 期刊稿件文章同行评审

摘要

The nonvolatile control of magnetic structures in 2D ferromagnets is essential for advancing spintronics. Here, gate-tunable lithium intercalation is demonstrated as an effective strategy for modulating the magnetic properties of Fe3GaTe2 in a pronounced thickness-dependent manner. In flakes thicker than 27 nm, partial Li intercalation induces a functional ferromagnetic–antiferromagnetic vertical heterostructure, evidenced by an enhanced coercive field and a giant exchange bias of ∼0.31 T. Conversely, in flakes thinner than 20 nm, full Li penetration leads to a mixed-phase transition, resulting in reduced coercivity and no exchange bias is observed. Real-space magnetic force microscopy (MFM) imaging, combined with in situ atomic force microscopy (AFM) and scanning transmission electron microscopy (STEM), directly reveals the thickness-dependent evolution of magnetic domains and lattice distortions, providing a structural basis for the observed modulation. Density functional theory (DFT) calculations support these findings, confirming a lithium-induced ferromagnetic-to-antiferromagnetic phase transition accompanied by lattice expansion. These results highlight the exceptional magnetic tunability of Fe3GaTe2 via ionic control and establish gate-controlled intercalation as a reconfigurable platform for engineering topological spin textures and energy-efficient magnetic memory devices.

源语言英语
期刊Advanced Functional Materials
DOI
出版状态已接受/待刊 - 2026

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