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Inverse Acoustic Spin Hall Effect in Heavy Metal-Ferromagnet Bilayers
Yang Cao1, Tong Li1, Na Lei2,3
1Lanzhou University, Key Laboratory of Magnetism and Magnetic Functional Materials (, ), Ministry of Education, Lanzhou 730000, China.
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The acoustic spin Hall effect (ASHE) enables the generation of spin current via lattice vibrations driven by surface acoustic waves (SAWs) in heavy metals. Here, we report its reciprocal counterpart-the inverse ASHE-in which an alternating (ac) spin current induces coherent lattice vibrations that propagate SAWs. By injecting ac spin currents into a heavy metal via interfacial spin backflow in a heavy metal-ferromagnet bilayer, we successfully detect such spin-current-induced nonlocal SAWs over distances up to 400 μm in an LiNbO_{3} substrate. As the previously unobserved reciprocal element in spin-lattice interactions, the inverse ASHE completes the framework of spin-phonon interconversion and uncovers a phonon-mediated pathway for long-range spin transport, even through nonmagnetic insulators.
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