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Spin current generation by acousto-electric evanescent wave

Kawada, Takuya*; Yamamoto, Kei   ; Kono, Hiroshi*; Hayashi, Masamitsu*

In this work, we show both experimentally and theoretically that the electromagnetic fields dominate the charge current response of a ferromagnet/heavy metal multilayer deposited on top of a LiNbO$$_{3}$$ substrate under SAW excitation. Despite travelling much slower than the light in vacuum, the SAW-induced evanescent electric field turns out to have a transverse component that remains unscreened by conduction electrons and permeates through the film stack, causing a sizable ac electric current. The ac spin current generated through the spin-Hall effect combined with a magnetoelastic oscillation of magnetization leads to a rectified dc voltage signal of order 10 uV. The transverse electric field is naturally accompanied by a magnetic field, which is calculated to be as large as 1 uT. We clarify the relation between the validity of electrostatic approximation and the presence of non-negligible transverse fields. The work reveals the electromagnetic origin of acoustic spin-Hall effect and sheds light on the potential relevance of piezoelectricity in spintronic applications.

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