Field-Free Spin-Orbit Torque Switching of Canted van der Waals Magnets

Bing Zhao*, Lalit Pandey, Khadiza Ali, Erdi Wang, Craig M. Polley, Balasubramanian Thiagarajan, Peter Makk, Marcos H.D. Guimarães, Saroj Prasad Dash*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Spin-orbit torque (SOT) magnetization switching is crucial for next-generation energy-efficient spintronic technologies. The recent discovery of van der Waals (vdW) magnets holds promise for such SOT phenomena because of their tunable magnetic properties. However, a demonstration of energy-efficient and field-free SOT switching of vdW magnets is required for their potential applications. Here, we demonstrate field-free and deterministic switching using an intrinsic canted vdW magnet Fe5GeTe2 in a heterostructure with Pt having a larger spin Hall conductivity up to room temperature. Using anomalous Hall electrical detection for magnetization readout, we reveal that field-free deterministic SOT switching in the Fe5GeTe2/Pt Hall devices can be attributed to the canted magnetic anisotropy of Fe5GeTe2, originating from its crystal and magnetic structures. Detailed second harmonic Hall measurements exhibit a high spin Hall conductivity σSH ∼ 3 × 105ℏ/2e Ω-1m-1 with an SOT effective damping-like field of 0.06 mT per MA/cm2. These findings reveal efficient and field-free SOT phenomena in the canted vdW magnet Fe5GeTe2 up to room temperature and highlight their usefulness in spintronic devices.

Original languageEnglish
Pages (from-to)13817-13824
Number of pages8
JournalAcs Nano
Volume19
Issue number14
DOIs
Publication statusPublished - 15-Apr-2025

Keywords

  • 2D magnets
  • 2D materials
  • canted magnetization
  • FeGeTe
  • room temperature
  • spin−orbit torque

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