Orbital and Spin–Orbit Torque Interplay in Ta/W-Based Magnetic Tunnel Junctions with Vertical Nonlocal Switching

Abstract Spin–orbit torque (SOT) enables ultrafast, energy-efficient magnetization switching, making it promising for MRAM cache applications. However, current SOT-MRAM devices face write efficiency limitations, with charge-to-spin conversion (ξDL) reaching only ∼ 45%, well below the projected ∼80% required for advanced transistor nodes. Recent advances in orbital current physics offer a route to enhance ξDL. Here, we study the Ta(3–30 nm)/W(1–4 nm) system, revealing a large additional torque contribution from Ta, a 4-fold increase over the spin Hall effect in Ta alone, attributed to the orbital physics. This system exhibits larger ξDL than W-based SOT systems, while maintaining robust perpendicular magnetic anisotropy and 400 °C annealing compatibility. We integrate the Ta/W system into 3-terminal SOT-MTJ devices, demonstrating performance comparable to W-based systems. Our results show that orbital physics offers a viable strategy to enhance SOT-MRAM efficiency. We further propose and demonstrate proof-of-concept vertical nonlocal switching using orbital torques, simplifying bottom-pinned SOT-MRAM fabrication.

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Publication Details

Journal
Nano Letters
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.nanolett.6c02672
Primary Topic
Magnetic properties of thin films
Type
article
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article

Orbital and Spin–Orbit Torque Interplay in Ta/W-Based Magnetic Tunnel Junctions with Vertical Nonlocal Switching

Ricardo C. Sousa, Louis Hutin, B. Viala, C. Bouchard et al.
Nano Letters
Magnetic properties of thin films
article

Orbital and Spin–Orbit Torque Interplay in Ta/W-Based Magnetic Tunnel Junctions with Vertical Nonlocal Switching

Ricardo C. Sousa, Louis Hutin, B. Viala, C. Bouchard, Kevin Garello, Corrado C. M. Capriata, Marco Biagi, Subham Kintali Senapati, Ioannis Trikoilis Koll
article en

Abstract

Abstract Spin–orbit torque (SOT) enables ultrafast, energy-efficient magnetization switching, making it promising for MRAM cache applications. However, current SOT-MRAM devices face write efficiency limitations, with charge-to-spin conversion (ξDL) reaching only ∼ 45%, well below the projected ∼80% required for advanced transistor nodes. Recent advances in orbital current physics offer a route to enhance ξDL. Here, we study the Ta(3–30 nm)/W(1–4 nm) system, revealing a large additional torque contribution from Ta, a 4-fold increase over the spin Hall effect in Ta alone, attributed to the orbital physics. This system exhibits larger ξDL than W-based SOT systems, while maintaining robust perpendicular magnetic anisotropy and 400 °C annealing compatibility. We integrate the Ta/W system into 3-terminal SOT-MTJ devices, demonstrating performance comparable to W-based systems. Our results show that orbital physics offers a viable strategy to enhance SOT-MRAM efficiency. We further propose and demonstrate proof-of-concept vertical nonlocal switching using orbital torques, simplifying bottom-pinned SOT-MRAM fabrication.

Nano Letters
Institut polytechnique de Grenoble (FR), Connecticut Education Association (US), Spintronique et Technologie des Composants (FR), Laboratoire d'Électronique des Technologies de l'Information (FR), Canadian Nautical Research Society (CA), Université Grenoble Alpes (FR)
Affordable and clean energy
Openalex Percentile: Top 55%
Magnetic properties of thin films
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Orbital and Spin–Orbit Torque Interplay in Ta/W-Based Magnetic Tunnel Junctions with Vertical Nonlocal Switching — Ricardo C. Sousa, Louis Hutin, et al. · Nano Letters (2026) | TGRS Research Map | TGRS