Spin Transport Across Interfaces With the Non‐Collinear Antiferromagnet Mn 3 Sn

ABSTRACT Non‐collinear antiferromagnets such as are promising materials for ultrafast spintronic applications due to their peculiar electronic structure and efficient spin‐dependent transport phenomena. Here, we investigate magnetic ordering and ultrafast spin transport in c ‐axis oriented thin films and ‐based heterostructures with Pt and . Temperature‐dependent magneto‐optical Kerr effect measurements confirm thermally activated switching of the cluster octupole moment near the Néel temperature, while preserving predominantly in‐plane magnetic order. In heterostructures, however, pronounced room‐temperature ferromagnetic signatures are observed, including enhanced Kerr rotation and out‐of‐plane magnetization. Systematic magnetometry studies reveal the formation of an intermixed interfacial phase upon annealing. Ultrafast transport measurements using a sample with optimized interfaces show that optical excitation of generates predominantly anomalous Nernst currents, with no detectable evidence of efficient spin–current injection into Pt. In contrast, exhibits a significant inverse spin Hall conversion when driven by spin currents injected from , reaching approximately of the efficiency of Pt‐based reference structures. The conversion efficiency is found to be independent of the relative orientation between ferromagnetic magnetization and antiferromagnetic octupole moment. Our results emphasize the importance of interface engineering for spintronic devices.

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Publication Details

Journal
Advanced Materials
Published
2026-09-20
DOI
https://doi.org/10.1002/adma.75024
Primary Topic
Magnetic properties of thin films
Type
article
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article

Spin Transport Across Interfaces With the Non‐Collinear Antiferromagnet Mn 3 Sn

Börge Göbel, Franziska Ziolkowski, Banabir Pal, Samir Lounis et al.
Advanced Materials
Magnetic properties of thin films
article

Spin Transport Across Interfaces With the Non‐Collinear Antiferromagnet Mn 3 Sn

Börge Göbel, Franziska Ziolkowski, Banabir Pal, Samir Lounis, Georg Woltersdorf, Prajwal Rigvedi, W. Hoppe, Paul Alexander Marschall, Stuart S. P. Parkin
article en

Abstract

ABSTRACT Non‐collinear antiferromagnets such as are promising materials for ultrafast spintronic applications due to their peculiar electronic structure and efficient spin‐dependent transport phenomena. Here, we investigate magnetic ordering and ultrafast spin transport in c ‐axis oriented thin films and ‐based heterostructures with Pt and . Temperature‐dependent magneto‐optical Kerr effect measurements confirm thermally activated switching of the cluster octupole moment near the Néel temperature, while preserving predominantly in‐plane magnetic order. In heterostructures, however, pronounced room‐temperature ferromagnetic signatures are observed, including enhanced Kerr rotation and out‐of‐plane magnetization. Systematic magnetometry studies reveal the formation of an intermixed interfacial phase upon annealing. Ultrafast transport measurements using a sample with optimized interfaces show that optical excitation of generates predominantly anomalous Nernst currents, with no detectable evidence of efficient spin–current injection into Pt. In contrast, exhibits a significant inverse spin Hall conversion when driven by spin currents injected from , reaching approximately of the efficiency of Pt‐based reference structures. The conversion efficiency is found to be independent of the relative orientation between ferromagnetic magnetization and antiferromagnetic octupole moment. Our results emphasize the importance of interface engineering for spintronic devices.

Advanced Materials
Max Planck Institute of Microstructure Physics (DE), Martin Luther University Halle-Wittenberg (DE)
Openalex Percentile: Top 13%
Magnetic properties of thin films
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