Enhanced Spin Current in Ni 81 Fe 19 /Cu-CuO x Bilayer with Top and Sideways Oxidization

Generation and manipulation of spin current are the cores of spintronic devices, which are intensely pursued. Heavy metals with strong spin-orbit coupling are commonly used for the generation of spin current, but are incompatible with the mass production of devices, and the polarization of spin curr...

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Veröffentlicht in:Advanced materials (Weinheim) 2023-04, Vol.35 (14), p.e2207988
Hauptverfasser: An, Taiyu, Cui, Bin, Liu, Liang, Zhang, Mingfang, Liu, Fufu, Liu, Weikang, Xie, Jihao, Ren, Xue, Chu, Ruiyue, Cheng, Bin, Jiang, Changjun, Hu, Jifan
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Sprache:eng
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Zusammenfassung:Generation and manipulation of spin current are the cores of spintronic devices, which are intensely pursued. Heavy metals with strong spin-orbit coupling are commonly used for the generation of spin current, but are incompatible with the mass production of devices, and the polarization of spin current is limited to be in-plane. Here, it is shown that the spin current with strong out-of-plane polarization component can be generated and transmitted in Ni Fe /Cu-CuO bilayer with sideways and top oxidizations. The charge-to-spin current conversion efficiency can be enhanced through the spin currents consisting of both out-of-plane polarization (σ ) and in-plane polarization (σ ) induced by spin-vorticity coupling. Such a spin current is demonstrated to be closely related to the lateral oxidization gradient and can be controlled by changing the temperatures and times of annealing. The finding here provides a novel degree of freedom to produce and control the spin current in spintronic devices.
ISSN:0935-9648
1521-4095
DOI:10.1002/adma.202207988