BulkSpin-OrbitTorque-Driven Spin Hall Nano-OscillatorsUsing PtBi Alloys with Engineered Crystallinity
Artikel i vetenskaplig tidskrift, 2026

Spin-orbit-torque-driven auto-oscillations in spin Hall nano-oscillators (SHNOs) provide a promising route toward energy-efficient, nanoscale microwave devices for neuromorphic computing and high-frequency technologies. Achieving robust oscillations requires lowering the threshold current (I th), governed by the spin Hall efficiency (theta SH). Conventional approaches to enhance theta SH often involve trade-offs, such as increased resistivity and interfacial effects. Here, we demonstrate a pronounced enhancement of the bulk spin Hall effect in PtBi alloys via crystallographic engineering, achieving a 3-fold increase in theta SH from 0.07 in Pt100.0Bi0.0 to 0.24 in Pt94.0Bi6.0 and 0.19 in Pt91.3Bi8.7, extracted from DC-bias spin-torque ferromagnetic resonance. The enhancement arises from bulk-dominated extrinsic side-jump scattering. Correspondingly, I th is reduced by 42% and 32% in 100 nm SHNOs based on Co40Fe40B20(3 nm)/Pt94.0Bi6.0(4 nm) and Co40Fe40B20(3 nm)/Pt91.3Bi8.7(4 nm), respectively. The devices exhibit narrower linewidths (similar to 25 MHz), enhanced quality factors (350 <= Q <= 550, similar to 4 & times; higher than Pt (Pt100.0Bi0.0)), and a 61.6% reduction in threshold power. These findings establish PtBi alloys as efficient spin Hall materials, enabling reduced power consumption for SHNO-based neuromorphic and memory technologies.

spin Hall effect

spin-orbit torque

auto-oscillation

extrinsicside-jump scattering

spin Hall nano-oscillator

Författare

Utkarsh Shashank

Göteborgs universitet

Akash Kumar

Göteborgs universitet

Tahereh Sadat Parvini

Walther-Meissner-Institut für Tieftemperaturforschung

MCQST

Universität Greifswald

Hauke Heyen

Universität Greifswald

Lunjie Zeng

Chalmers, Fysik, Nano- och biofysik

Andrew Yankovich

Chalmers, Fysik, Nano- och biofysik

Jong-Guk Choi

Göteborgs universitet

Mona Rajabali

Nanosc AB

Eva Olsson

Chalmers, Fysik, Nano- och biofysik

Markus Munzenberg

Universität Greifswald

Johan Akerman

Göteborgs universitet

ACS Applied Materials & Interfaces

1944-8244 (ISSN) 1944-8252 (eISSN)

Vol. 18 29 39941-39951

ARTEMI - en Nationell Forskningsinfrastruktur för Elektronmikroskopi

Vetenskapsrådet (VR) (2021-00171), 2022-01-01 -- 2026-12-31.

Stiftelsen för Strategisk forskning (SSF) (RIF21-0026), 2022-09-01 -- 2027-12-31.

Ämneskategorier (SSIF 2025)

Den kondenserade materiens fysik

Infrastruktur

Chalmers materialanalyslaboratorium

DOI

10.1021/acsami.6c06092

PubMed

42441567

Mer information

Senast uppdaterat

2026-08-06