Syntropic spin alignment at the interface between ferromagnetic and superconducting nitrides

The magnetic correlations at the superconductor/ferromagnet (S/F) interfaces play a crucial role in realizing dissipation-less spin-based logic and memory technologies, such as triplet-supercurrent spin-valves and 'π' Josephson junctions. Here we report the observation of an induced large...

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Veröffentlicht in:National science review 2024-08, Vol.11 (8), p.nwae107
Hauptverfasser: Jin, Qiao, Zhang, Qinghua, Bai, He, Yang, Meng, Ga, Yonglong, Chen, Shengru, Hong, Haitao, Cui, Ting, Rong, Dongke, Lin, Ting, Wang, Jia-Ou, Ge, Chen, Wang, Can, Cao, Yanwei, Gu, Lin, Song, Guozhu, Wang, Shanmin, Jiang, Kun, Cheng, Zhi-Gang, Zhu, Tao, Yang, Hongxin, Jin, Kui-Juan, Guo, Er-Jia
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Sprache:eng
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Zusammenfassung:The magnetic correlations at the superconductor/ferromagnet (S/F) interfaces play a crucial role in realizing dissipation-less spin-based logic and memory technologies, such as triplet-supercurrent spin-valves and 'π' Josephson junctions. Here we report the observation of an induced large magnetic moment at high-quality nitride S/F interfaces. Using polarized neutron reflectometry and DC SQUID measurements, we quantitatively determined the magnetization profile of the S/F bilayer and confirmed that the induced magnetic moment in the adjacent superconductor only exists below . Interestingly, the direction of the induced moment in the superconductors was unexpectedly parallel to that in the ferromagnet, which contrasts with earlier findings in S/F heterostructures based on metals or oxides. First-principles calculations verified that the unusual interfacial spin texture observed in our study was caused by the Heisenberg direct exchange coupling with constant J∼4.28 meV through -orbital overlapping and severe charge transfer across the interfaces. Our work establishes an incisive experimental probe for understanding the magnetic proximity behavior at S/F interfaces and provides a prototype epitaxial 'building block' for superconducting spintronics.
ISSN:2095-5138
2053-714X
2053-714X
DOI:10.1093/nsr/nwae107