Title
Current-Induced Spin Torques on Single GdFeCo Magnetic Layers
Date Issued
01 March 2021
Access level
open access
Resource Type
journal article
Author(s)
Céspedes-Berrocal D.
Damas H.
Petit-Watelot S.
Maccariello D.
Tang P.
Arriola-Córdova A.
Vallobra P.
Xu Y.
Bello J.L.
Martin E.
Migot S.
Ghanbaja J.
Zhang S.
Hehn M.
Mangin S.
Panagopoulos C.
Cros V.
Fert A.
Université de Lorraine
Publisher(s)
John Wiley and Sons Inc
Abstract
Spintronics exploit spin-orbit coupling (SOC) to generate spin currents, spin torques, and, in the absence of inversion symmetry, Rashba and Dzyaloshinskii–Moriya interactions. The widely used magnetic materials, based on 3d metals such as Fe and Co, possess a small SOC. To circumvent this shortcoming, the common practice has been to utilize the large SOC of nonmagnetic layers of 5d heavy metals (HMs), such as Pt, to generate spin currents and, in turn, exert spin torques on the magnetic layers. Here, a new class of material architectures is introduced, excluding nonmagnetic 5d HMs, for high-performance spintronics operations. Very strong current-induced torques exerted on single ferrimagnetic GdFeCo layers, due to the combination of large SOC of the Gd 5d states and inversion symmetry breaking mainly engineered by interfaces, are demonstrated. These “self-torques” are enhanced around the magnetization compensation temperature and can be tuned by adjusting the spin absorption outside the GdFeCo layer. In other measurements, the very large emission of spin current from GdFeCo, 80% (20%) of spin anomalous Hall effect (spin Hall effect) symmetry is determined. This material platform opens new perspectives to exert “self-torques” on single magnetic layers as well as to generate spin currents from a magnetic layer.
Volume
33
Issue
12
Language
English
OCDE Knowledge area
Física de partículas, Campos de la Física
Scopus EID
2-s2.0-85101017550
PubMed ID
Source
Advanced Materials
ISSN of the container
09359648
Sponsor(s)
This work was supported partially from Agence Nationale de la Recherche (France) under contract No ANR‐18‐CE24‐0008 (MISSION), ANR‐19‐CE24‐0016‐01 (TOPTRONIC), and ANR‐17‐CE24‐0025 (TOPSKY), from the French PIA project “Lorraine Université d'Excellence,” reference ANR‐15IDEX‐04‐LUE. D.C.‐B., A.Y.A.C, and H.D, acknowledge “Spintronic and Nanomagnetism” team for their internship fellow 2018, 2019, and 2020, respectively. D.C.‐B also thanks “LUE Graduated” program internship 2019 from “Lorraine Université de Excellence.” C.P. thanks the Academic Research Fund Tier 3 (Reference No. MOE5093) and the National Research Foundation (Reference No. NRF‐NRFI2015‐04) for financial support. Devices in the present study were patterned at MiNaLor clean‐room platform which is partially supported by FEDER and Grand Est Region through the RaNGE project.
Sources of information: Directorio de Producción Científica Scopus