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Van der Waals spin-orbit torque antiferromagnetic memory

Lishu Zhang1,*, Zhengping Yuan2,*, Jie Yang3, Jun Zhou4, Yanyan Jiang5, Hui Li5, Yongqing Cai6, Evgeny Y. Tsymbal7, Yuan Ping Feng1,8,† et al.

Zhifeng Zhu2,‡ and Lei Shen9,§

  • *These authors contributed equally to this work.
  • †Contact author: phyfyp@nus.edu.sg
  • ‡Contact author: zhuzhf@shanghaitech.edu.cn
  • §Contact author: shenlei@nus.edu.sg

Phys. Rev. B 110, L220409 – Published 20 December, 2024

DOI: https://doi.org/10.1103/PhysRevB.110.L220409

Abstract

The technique of conventional ferromagnet/heavy-metal spin-orbit torque (SOT) offers significant potential for enhancing the efficiency of magnetic memories. However, it faces fundamental physical limitations, including shunting effects from the metallic layer, broken symmetry for enabling antidamping switching, spin scattering caused by interfacial defects, and sensitivity to stray magnetic fields. To address these issues, we here propose a van der Waals (vdW) field-free SOT antiferromagnetic memory using a vdW bilayer LaBr2 (an antiferromagnet with perpendicular magnetic anisotropy) and a monolayer Td phase WTe2 (a Weyl semimetal with broken inversion symmetry). By systematically employing density functional theory in conjunction with nonequilibrium Green's function methods and macrospin simulations, we demonstrate that the proposed vdW SOT devices exhibit remarkably low critical current density approximately 10MA/cm2 and rapid field-free magnetization switching in 250 ps. This facilitates excellent write performance with extremely low energy consumption. Furthermore, the device shows a significantly low read error rate, as evidenced by a high tunnel magnetoresistance ratio of up to 4250%. The superior write and read performance originates from the unique strong on-site (insulating phase) and off-site (magnetic phase) Coulomb interactions in electride LaBr2, a large nonzero z-component polarization in WTe2, and the proximity effect between them.

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