Room-Temperature Ferromagnetism with Strong Spin-Orbit Coupling Achieved in CaRuO<sub>3</sub> Interfacial Phase via Magnetic Proximity Effect.

Zheng, Jie; Zhang, Jing; Cheng, Sheng; Shi, Wenxiao; Wang, Mengqin; Li, Zhe; Chen, Yunzhong; Hu, Fengxia et al. · ACS Nano · 2024

basic_science · Level V

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Abstract

Recently, theoretical and experimental research predicted that ferromagnets with strong spin-orbit coupling (SOC) could serve as spin sources with dramatically enhanced spin-orbit torque (SOT) efficiency due to the combination of spin Hall effect and anomalous Hall effect (AHE), presenting potential advantages over conventional nonmagnetic heavy metals. However, materials with a strong SOC and room-temperature ferromagnetism are rare. Here, we report on a ferromagnetic (FM) interfacial phase with Curie temperature exceeding 300 K in the heavy transition-metal oxide CaRuO<sub>3</sub>, in proximity to La<sub>0.67</sub>Sr<sub>0.33</sub>MnO<sub>3</sub>. Electron energy loss and polarized neutron reflectometry spectra reveal the strong charge transfer from Ru to Mn at the interface, triggering antiferromagnetic exchange interactions between interfacial Ru/Mn ions and thus transferring magnetic order from La<sub>0.67</sub>Sr<sub>0.33</sub>MnO<sub>3</sub> to CaRuO<sub>3</sub>. An obvious advantage of such interfacial phase is the enhanced anomalous Hall effect at temperatures from 150 to 300 K. Compared to the most promising room-temperature ferromagnetic oxide La<sub>0.67</sub>Sr<sub>0.33</sub>MnO<sub>3</sub>, the anomalous Hall conductivity σ<sub><i>xy</i></sub><sup>AHE</sup> (or anomalous Hall angle θ<sub>H</sub>) of CaRuO<sub>3</sub>/La<sub>0.67</sub>Sr<sub>0.33</sub>MnO<sub>3</sub> superlattices is increased by 30 (or 31) times at 150 K and 10 (or 3) times at 300 K. This work demonstrates a special approach for inducing ferromagnetism in heavy transition-metal oxides with strong SOC, offering promising prospects for all-oxide-based spintronic applications.