Bulk spin-orbit torque-driven spin Hall nano-oscillators using PtBi alloys
Abstract
Spin-orbit-torque-driven auto-oscillations in spin Hall nano-oscillators (SHNOs) offer a transformative pathway toward energy-efficient, nanoscale microwave devices for next-generation neuromorphic computing and high-frequency technologies. A key requirement for achieving robust, sustained oscillations is reducing the threshold current (), strongly governed by spin Hall efficiency (). However, conventional strategies to enhance face trade-offs, including high longitudinal resistivity, interfacial effects, and symmetry-breaking torques that limit performance. Here, we demonstrate a substantial enhancement of the bulk spin Hall effect in PtBi alloys, achieving over a threefold increase in , from 0.07 in pure Pt to 0.24 in PtBi and 0.19 in PtBi, as extracted from DC-bias spin-torque ferromagnetic resonance. The enhanced originates from bulk-dominated, extrinsic side-jump scattering across all PtBi compositions. Correspondingly, we observe a 42\% and 32\% reduction in in 100 nm SHNOs based on CoFeB(3 nm)/PtBi(4 nm) and CoFeB(3 nm)/PtBi(4 nm), respectively. Structural characterization reveals reduced Pt crystallinity, along with emergence of preferred crystallographic orientations upon introducing higher Bi concentrations. Together, these results position PtBi alloys as a compelling alternative to conventional 5 transition metals, enabling enhanced and significantly lower , thus opening new avenues for energy-efficient neuromorphic computing and magnetic random access memory.
Keywords
Cite
@article{arxiv.2507.10219,
title = {Bulk spin-orbit torque-driven spin Hall nano-oscillators using PtBi alloys},
author = {Utkarsh Shashank and Akash Kumar and Tahereh Sadat Parvini and Hauke Heyen and Lunjie Zeng and Andrew B. Yankovich and Mona Rajabali and Eva Olsson and Markus Münzenberg and Johan Åkerman},
journal= {arXiv preprint arXiv:2507.10219},
year = {2025}
}
Comments
19 pages, 5 figures