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Giant facet-dependent spin-orbit torque and spin Hall conductivity in the triangular antiferromagnet IrMn 3 .

Authors :
Zhang W
Han W
Yang SH
Sun Y
Zhang Y
Yan B
Parkin SS
Source :
Science advances [Sci Adv] 2016 Sep 30; Vol. 2 (9), pp. e1600759. Date of Electronic Publication: 2016 Sep 30 (Print Publication: 2016).
Publication Year :
2016

Abstract

There has been considerable interest in spin-orbit torques for the purpose of manipulating the magnetization of ferromagnetic elements for spintronic technologies. Spin-orbit torques are derived from spin currents created from charge currents in materials with significant spin-orbit coupling that propagate into an adjacent ferromagnetic material. A key challenge is to identify materials that exhibit large spin Hall angles, that is, efficient charge-to-spin current conversion. Using spin torque ferromagnetic resonance, we report the observation of a giant spin Hall angle [Formula: see text] of up to ~0.35 in (001)-oriented single-crystalline antiferromagnetic IrMn <subscript>3</subscript> thin films, coupled to ferromagnetic permalloy layers, and a [Formula: see text] that is about three times smaller in (111)-oriented films. For (001)-oriented samples, we show that the magnitude of [Formula: see text] can be significantly changed by manipulating the populations of various antiferromagnetic domains through perpendicular field annealing. We identify two distinct mechanisms that contribute to [Formula: see text]: the first mechanism, which is facet-independent, arises from conventional bulk spin-dependent scattering within the IrMn <subscript>3</subscript> layer, and the second intrinsic mechanism is derived from the unconventional antiferromagnetic structure of IrMn <subscript>3</subscript> . Using ab initio calculations, we show that the triangular magnetic structure of IrMn <subscript>3</subscript> gives rise to a substantial intrinsic spin Hall conductivity that is much larger for the (001) than for the (111) orientation, consistent with our experimental findings.

Details

Language :
English
ISSN :
2375-2548
Volume :
2
Issue :
9
Database :
MEDLINE
Journal :
Science advances
Publication Type :
Academic Journal
Accession number :
27704044
Full Text :
https://doi.org/10.1126/sciadv.1600759