Single-crystal epitaxial europium iron garnet films with strain-induced perpendicular magnetic anisotropy: structural, strain, magnetic, and spin transport properties
M. X. Guo (1), C. K. Cheng (2), Y. C. Liu (1), C. N. Wu (3), W. N., Chen (1), T. Y Chen (4), C. T. Wu (5), C. H. Hsu (6), S. Q. Zhou (7), C. F., Chang (3), L. H. Tjeng (3), S. F. Lee (8), C. F. Pai (4), M. Hong (2), J., Kwo (1) ((1) Department of Physics

TL;DR
This study reports the growth and characterization of single-crystal EuIG films with strain-induced perpendicular magnetic anisotropy, demonstrating tunable magnetic properties and potential for low-power spintronic applications.
Contribution
The paper presents a novel method to strain-engineer EuIG thin films with controlled magnetic anisotropy and spin transport properties, advancing their application in spintronics.
Findings
Achieved atomically smooth EuIG films with high crystallinity.
Demonstrated tunable magnetic anisotropy and saturation magnetization.
Showed low critical current for magnetization switching in spintronic devices.
Abstract
Single-crystal europium iron garnet (EuIG) thin films epitaxially strain-grown on gadolinium gallium garnet (GGG)(100) substrates using off-axis sputtering have strain-induced perpendicular magnetic anisotropy (PMA). By varying the sputtering conditions, we have tuned the europium/iron (Eu/Fe) composition ratios in the films to tailor the film strains. The films exhibited an extremely smooth, particle-free surface with roughness as low as 0.1 nm as observed using atomic force microscopy. High-resolution x-ray diffraction analysis and reciprocal space maps showed in-plane epitaxial film growth, very smooth film/substrate interface, excellent film crystallinity with a small full width at half maximum of 0.012 in the rocking curve scans, and an in-plane compressive strain without relaxation. In addition, spherical aberration-corrected scanning transmission electron microscopy…
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Taxonomy
TopicsMagneto-Optical Properties and Applications · Magnetic properties of thin films · Magnetic Properties and Applications
