Large non-reciprocal propagation of surface acoustic waves in epitaxial ferromagnetic/semiconductor hybrid structures
A. Hern\'andez-M\'inguez, F. Maci\`a, J. M. Hern\`andez, J. Herfort, and P. V. Santos

TL;DR
This paper demonstrates the largest non-reciprocal surface acoustic wave transmission on a ferromagnetic/semiconductor hybrid, enabled by magneto-elastic interactions, paving the way for advanced acoustic isolator devices.
Contribution
It reports the first large non-reciprocal SAW transmission in a ferromagnetic/semiconductor hybrid, with a controllable magneto-elastic mechanism and potential for device optimization.
Findings
Non-reciprocity up to 20% in SAW transmission.
Magneto-elastic interaction controls non-reciprocity.
Model predicts further enhancement through design optimization.
Abstract
Non-reciprocal propagation of sound, that is, the different transmission of acoustic waves traveling along opposite directions, is a challenging requirement for the realization of devices like acoustic isolators and circulators. Here, we demonstrate the efficient non-reciprocal transmission of surface acoustic waves (SAWs) propagating along opposite directions of a GaAs substrate coated with an epitaxial FeSi film. The non-reciprocity arises from the acoustic attenuation induced by the magneto-elastic (ME) interaction between the SAW strain field and spin waves in the ferromagnetic film, which depends on the SAW propagation direction and can be controlled via the amplitude and orientation of an external magnetic field. The acoustic transmission non-reciprocity, defined as the difference between the transmitted acoustic power for forward and backward propagation under ME resonance,…
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