Stacking-engineered magnetic anisotropy in bilayer SrRuO3 freestanding membranes

The emergence of freestanding oxide membrane technology has enabled the layer-by-layer stacking of these materials in a manner analogous to two-dimensional (2D) van der Waals (vdW) heterostructures. Magnetic anisotropy is of great significance for magnetic materials and spintronics; however, investigations into the magnetic properties—particularly magnetic anisotropy—of such stacked oxide membranes remain scarce. Here, we fabricate bilayer SrRuO3 heterostructures by stacking two freestanding SrRuO3 membranes using water-soluble Sr3Al2O6 as a sacrificial layer. The freestanding SrRuO3 single layers exhibit two coexisting magnetic components with perpendicular and in-plane magnetic anisotropies. We demonstrate that stacking two SrRuO3 single layers leads to a substantial suppression of the perpendicular magnetic anisotropy. This behavior is consistently observed across bilayer SrRuO3 membranes spanning a wide range of thicknesses, establishing the universality of this phenomenon. Unlike traditional 2D-material stacking that yields weak interlayer vdW coupling, the present work induces easy-axis rotation via interlayer atomic bonding in the bilayer freestanding membranes. These findings provide a versatile strategy for engineering magnetic anisotropy in complex oxides for spintronic applications.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0348262
Primary Topic
Advanced Condensed Matter Physics
Type
article
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Stacking-engineered magnetic anisotropy in bilayer SrRuO3 freestanding membranes

Bin Xiang, Xingcan Zhou, Yalin Lu, Shuyu Dong et al.
Applied Physics Letters
Advanced Condensed Matter Physics
article

Stacking-engineered magnetic anisotropy in bilayer SrRuO3 freestanding membranes

Bin Xiang, Xingcan Zhou, Yalin Lu, Shuyu Dong, Qingyou Lu, Zhangzhang Cui, Yechen Wang, Qiang Deng
article en

Abstract

The emergence of freestanding oxide membrane technology has enabled the layer-by-layer stacking of these materials in a manner analogous to two-dimensional (2D) van der Waals (vdW) heterostructures. Magnetic anisotropy is of great significance for magnetic materials and spintronics; however, investigations into the magnetic properties—particularly magnetic anisotropy—of such stacked oxide membranes remain scarce. Here, we fabricate bilayer SrRuO3 heterostructures by stacking two freestanding SrRuO3 membranes using water-soluble Sr3Al2O6 as a sacrificial layer. The freestanding SrRuO3 single layers exhibit two coexisting magnetic components with perpendicular and in-plane magnetic anisotropies. We demonstrate that stacking two SrRuO3 single layers leads to a substantial suppression of the perpendicular magnetic anisotropy. This behavior is consistently observed across bilayer SrRuO3 membranes spanning a wide range of thicknesses, establishing the universality of this phenomenon. Unlike traditional 2D-material stacking that yields weak interlayer vdW coupling, the present work induces easy-axis rotation via interlayer atomic bonding in the bilayer freestanding membranes. These findings provide a versatile strategy for engineering magnetic anisotropy in complex oxides for spintronic applications.

Applied Physics LettersVol. 129(11)
University of Science and Technology of China (CN), Hefei University of Technology (CN), Hefei University (CN), Hefei National Center for Physical Sciences at Nanoscale (CN)
Openalex Percentile: Top 17%
Advanced Condensed Matter Physics
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