Nonvolatile Multistate Manipulation of Topological Magnetism in Monolayer CrI3 through Quadruple-Well Ferroelectric Materials

Peixuan Li, Lei Tao, Xin Jin, Guolin Wan, Jie Zhang, Yan Fang Zhang, Jia Tao Sun, Jinbo Pan*, Shixuan Du*

*Corresponding author for this work

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Abstract

Nonvolatile multistate manipulation of two-dimensional (2D) magnetic materials holds promise for low dissipation, highly integrated, and versatile spintronic devices. Here, utilizing density functional theory calculations and Monte Carlo simulations, we report the realization of nonvolatile and multistate control of topological magnetism in monolayer CrI3 by constructing multiferroic heterojunctions with quadruple-well ferroelectric (FE) materials. The Pt2Sn2Te6/CrI3 heterojunction exhibits multiple magnetic phases upon modulating FE polarization states of FE layers and interlayer sliding. These magnetic phases include Bloch-type skyrmions and ferromagnetism, as well as a newly discovered topological magnetic structure. We reveal that the Dzyaloshinskii-Moriya interaction (DMI) induced by interfacial coupling plays a crucial role in magnetic skyrmion manipulation, which aligns with the Fert-Levy mechanism. Moreover, a regular magnetic skyrmion lattice survives when removing a magnetic field, demonstrating its robustness. The work sheds light on an effective approach to nonvolatile and multistate control of 2D magnetic materials.

Original languageEnglish
Pages (from-to)2345-2351
Number of pages7
JournalNano Letters
Volume24
Issue number7
DOIs
Publication statusPublished - 21 Feb 2024

Keywords

  • Two-dimensional materials
  • magnetic skyrmions
  • multistate control
  • nonvolatile manipulation
  • quadruple-well ferroelectricity

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Li, P., Tao, L., Jin, X., Wan, G., Zhang, J., Zhang, Y. F., Sun, J. T., Pan, J., & Du, S. (2024). Nonvolatile Multistate Manipulation of Topological Magnetism in Monolayer CrI3 through Quadruple-Well Ferroelectric Materials. Nano Letters, 24(7), 2345-2351. https://doi.org/10.1021/acs.nanolett.3c04799