Enhancing Interfacial Ferromagnetism and Magnetic Anisotropy of CaRuO3/SrTiO3 Superlattices via Substrate Orientation

Author:

Shi Wenxiao12,Zheng Jie12,Li Zhe12,Wang Mengqin12,Zhu Zhaozhao12,Zhang Jine3,Zhang Hui3,Chen Yunzhong12,Hu Fengxia12,Shen Baogen124,Chen Yuansha12,Sun Jirong125ORCID

Affiliation:

1. Beijing National Laboratory for Condensed Matter Physics and Institute of Physics Chinese Academy of Sciences Beijing 100190 China

2. School of Physical Sciences University of Chinese Academy of Sciences Beijing 100049 China

3. School of Integrated Circuit Science and Engineering Beihang University Beijing 100191 China

4. Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences Ningbo Zhejiang 315201 China

5. Spintronics Institute University of Jinan Jinan Shandong 250022 China

Abstract

AbstractArtificial 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 CaRuO3 and diamagnetic SrTiO3 is reported. The Curie temperature is as high as ≈155 K and the saturation magnetization is as large as ≈1.3 µB per formula unit for the (111)‐CaRuO3/SrTiO3 superlattices, which are obviously superior to those of the (001)‐oriented counterparts and are comparable to the typical itinerant ferromagnet SrRuO3. 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 SrTiO3. 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.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Joint Fund of the National Natural Science Foundation of China and the Karst Science Research Center of Guizhou Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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