材料科学
反铁磁性
铁磁性
凝聚态物理
超晶格
自旋电子学
磁各向异性
铁磁性
结晶学
磁化
物理
化学
磁场
量子力学
作者
Lu Guo,Neil Campbell,Alexander J. Grutter,Gahee Noh,Tianxiang Nan,Patrick Quarterman,Si‐Young Choi,Thomas Tybell,M. S. Rzchowski,Chang‐Beom Eom
标识
DOI:10.1103/physrevmaterials.8.l011401
摘要
Artificially layered superlattices with two distinct spin structures offer new opportunities for manipulation of magnetic properties and interfacial spin configurations. We have grown epitaxial, coherent superlattices of ferrimagnetic ${\mathrm{Mn}}_{3}\mathrm{Ga}$ and noncollinear antiferromagnetic ${\mathrm{Mn}}_{3}\mathrm{GaN}$. The out-of-plane ferrimagnetism of the ${\mathrm{Mn}}_{3}\mathrm{Ga}$ layer, and the Berry-phase charge to spin current generation by the noncollinear antiferromagnetic ${\mathrm{Mn}}_{3}\mathrm{GaN}$ layer, provide a unique combination for spintronic applications. Reactive magnetron sputtering growth resulted in abrupt transitions between the two layers through controlling the ${\mathrm{N}}_{2}$ flow. X-ray diffraction and cross-sectional scanning transmission electron microscopy images demonstrate clean layering and consistent modulation wavelengths, with interfacial roughness less than one unit cell. This allows investigation of the interfacial magnetic interactions. Through a combination of superconducting quantum interference device magnetometry and polarized neutron reflectometry we show that ${\mathrm{Mn}}_{3}\mathrm{Ga}/{\mathrm{Mn}}_{3}\mathrm{GaN}$ superlattice structures have the out-of-plane magnetic anisotropy decreased compared to ${\mathrm{Mn}}_{3}\mathrm{Ga}$ single-layer films. This softening is primarily a result of reduced anisotropy energy at the interface and is linked to the ${\mathrm{Mn}}_{3}\mathrm{GaN}$ layer. This superlattice structure provides a platform for devices that use out-of-plane spin torques generated from an antiferromagnetic material to switch the net magnetic moment of a ferrimagnetic material. Our results demonstrate the tunability of magnetic anisotropy to allow for optimal balancing of the switching power and thermal stability in spintronic heterostructures.
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