English

Giant Damping-like Spin-Torque Conductivity in a GeTe/Py van der Waals Heterostructure

Mesoscale and Nanoscale Physics 2026-01-21 v1 Materials Science

Abstract

Recent observations of large unconventional spin-orbit torques in van der Waals (vdW) materials are driving intense interest for energy-efficient spintronic applications. A key limitation of ferromagnet (FM)/vdW heterostructures is their lower value of damping-like torque conductivity (σDLy\sigma{\rm_{DL}^{y}}) compared to the conventional heavy metal-based systems, limiting their prospects for commercial spintronic devices. Here, we report both a giant σDLy\sigma{\rm_{DL}^{y}} of (1.25±0.11)×105 /2e Ω1-(1.25 \pm 0.11)\times 10^{5}~\hbar/ 2e~\Omega^{-1}m1^{-1} and an unconventional spin-orbit torque in a heterostructure comprising an FM (Ni80_{80}Fe20_{20}) and the vdW material GeTe. The value of σDLy\sigma{\rm_{DL}^{y}} represents the highest reported torque conductivity for any FM/vdW interface and is comparable to benchmark heavy metal heterostructures. First-principles calculations reveal that this substantial torque originates from the cooperative interplay of the spin Hall effect, orbital Hall effect, and orbital Rashba effect, assisted by interfacial charge transfer. These findings demonstrate the potential of carefully engineered vdW heterostructures to achieve highly efficient electrical manipulation of magnetization at room temperature, paving the way for next-generation low-power spintronic devices.

Keywords

Cite

@article{arxiv.2601.12581,
  title  = {Giant Damping-like Spin-Torque Conductivity in a GeTe/Py van der Waals Heterostructure},
  author = {Himanshu Bangar and Pratik Sahu and Akash Kumar and Pankhuri Gupta and Aman Saxena and Sheetal Dewan and Samaresh Das and Johan Åkerman and Birabar Ranjit Kumar Nanda and Pranaba Kishor Muduli},
  journal= {arXiv preprint arXiv:2601.12581},
  year   = {2026}
}