Observation of long-range orbital transport and giant orbital torque

被引:99
作者
Hayashi, Hiroki [1 ]
Jo, Daegeun [2 ]
Go, Dongwook [3 ,4 ,5 ,6 ]
Gao, Tenghua [1 ,7 ]
Haku, Satoshi [1 ]
Mokrousov, Yuriy [3 ,4 ,5 ,6 ]
Lee, Hyun-Woo [2 ]
Ando, Kazuya [1 ,7 ,8 ]
机构
[1] Keio Univ, Dept Appl Phys & Physicoinformat, Yokohama 2238522, Japan
[2] Pohang Univ Sci & Technol, Dept Phys, Pohang 37673, South Korea
[3] Forschungszentrum Julich, Peter Grunberg Inst, D-52425 Julich, Germany
[4] Forschungszentrum Julich, Inst Adv Simulat, D-52425 Julich, Germany
[5] JARA, D-52425 Julich, Germany
[6] Johannes Gutenberg Univ Mainz, Inst Phys, D-55099 Mainz, Germany
[7] Keio Univ, Keio Inst Pure & Appl Sci, Yokohama 2238522, Japan
[8] Keio Univ, Ctr Spintron Res Network, Yokohama 2238522, Japan
关键词
SPINTRONICS;
D O I
10.1038/s42005-023-01139-7
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Modern spintronics relies on the generation of spin currents through spin-orbit coupling. The spin-current generation has been believed to be triggered by current-induced orbital dynamics, which governs the angular momentum transfer from the lattice to the electrons in solids. The fundamental role of the orbital response in the angular momentum dynamics suggests the importance of the orbital counterpart of spin currents: orbital currents. However, evidence for its existence has been elusive. Here, we demonstrate the generation of giant orbital currents and uncover fundamental features of the orbital response. We experimentally and theoretically show that orbital currents propagate over longer distances than spin currents by more than an order of magnitude in a ferromagnet and nonmagnets. Furthermore, we find that the orbital current enables electric manipulation of magnetization with efficiencies significantly higher than the spin counterpart. These findings open the door to orbitronics that exploits orbital transport and spin-orbital coupled dynamics in solid-state devices. The generation of spin-current is integral for the successful development of spintronic devices however the orbital counterpart is also expected to be potentially advantageous. Here, using Ni/Ti bilayers, in combination with tight binding calculations, the authors investigate the spin torque efficiency that occurs as a result of the orbital Hall effect, observing that orbital currents can propagate over longer distances than the spin currents.
引用
收藏
页数:9
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