The emerging field of orbitronics exploits the electron orbital momentum L. Compared to spin-polarized electrons, L may allow the transfer of magnetic information with considerably higher density over longer distances in more materials. However, direct experimental observation of L currents, their extended propagation lengths and their conversion into charge currents has remained challenging. Here, we optically trigger ultrafast angular-momentum transport in Ni|W|SiO(2) thin-film stacks. The resulting terahertz charge-current bursts exhibit a marked delay and width that grow linearly with the W thickness. We consistently ascribe these observations to a ballistic L current from Ni through W with a giant decay length (~80ânm) and low velocity (~0.1ânmâfs(-1)). At the W/SiO(2) interface, the L flow is efficiently converted into a charge current by the inverse orbital Rashba-Edelstein effect, consistent with ab initio calculations. Our findings establish orbitronic materials with long-distance ballistic L transport as possible candidates for future ultrafast devices and an approach to discriminate Hall-like and Rashba-Edelstein-like conversion processes.
Time-domain observation of ballistic orbital-angular-momentum currents with giant relaxation length in tungsten.
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作者:Seifert Tom S, Go Dongwook, Hayashi Hiroki, Rouzegar Reza, Freimuth Frank, Ando Kazuya, Mokrousov Yuriy, Kampfrath Tobias
| 期刊: | Nature Nanotechnology | 影响因子: | 34.900 |
| 时间: | 2023 | 起止号: | 2023 Oct;18(10):1132-1138 |
| doi: | 10.1038/s41565-023-01470-8 | ||
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