凝聚态物理
超晶格
材料科学
铁磁性
磁各向异性
磁性
异质结
抗磁性
各向异性
顺磁性
居里温度
磁电阻
堆积
饱和(图论)
磁化
磁场
核磁共振
物理
数学
量子力学
组合数学
作者
Wenxiao Shi,Jie Zheng,Zhe Li,Mengqin Wang,Zhaozhao Zhu,Jine Zhang,Hui Zhang,Yunzhong Chen,Fengxia Hu,Baogen Shen,Yuansha Chen,Jirong Sun
出处
期刊:Small
[Wiley]
日期:2023-12-01
卷期号:20 (17)
被引量:1
标识
DOI:10.1002/smll.202308172
摘要
Abstract Artificial oxide heterostructures have provided promising platforms for the exploration of emergent quantum phases with extraordinary properties. One of the most interesting phenomena is the interfacial magnetism formed between two non‐magnetic compounds. Here, a robust ferromagnetic phase emerged at the (111)‐oriented heterointerface between paramagnetic CaRuO 3 and diamagnetic SrTiO 3 is reported. The Curie temperature is as high as ≈155 K and the saturation magnetization is as large as ≈1.3 µ B per formula unit for the (111)‐CaRuO 3 /SrTiO 3 superlattices, which are obviously superior to those of the (001)‐oriented counterparts and are comparable to the typical itinerant ferromagnet SrRuO 3 . A strong in‐plane magnetic anisotropy with six‐fold symmetry is further revealed by the anisotropic magnetoresistance measurements, presenting a large in‐plane anisotropic field of 3.0–3.6 T. More importantly, the magnetic easy axis of the (111)‐oriented superlattices can be effectively tuned from 〈1〉 to 〈〉 directions by increasing the layer thickness of SrTiO 3 . The findings demonstrate a feasible approach to enhance the interface coupling effect by varying the stacking orientation of oxide heterostructures. The tunable magnetic anisotropy also shows potential applications in low‐power‐consumption or exchange spring devices.
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