Energy-efficient spin injector into semiconductors driven by elastic waves
Andrei V. Azovtsev, Andrei I. Nikitchenko, Nikolay A. Pertsev

TL;DR
This paper proposes and theoretically demonstrates an energy-efficient spin injector into semiconductors using elastic waves to excite magnetic dynamics, enabling spin pumping with reduced power consumption compared to traditional microwave methods.
Contribution
The study introduces a novel spin injector design driven by elastic waves and provides micromagnetoelastic simulations showing its effectiveness in generating spin currents.
Findings
Elastic waves induce spin waves propagating micrometers in ferromagnetic films.
Steady-state magnetization precession occurs at the Ni/GaAs interface.
Generated electrical signals are strong enough for experimental detection.
Abstract
Generation of spin imbalance in nonmagnetic semiconductors is crucial for the functioning of many spintronic devices. An attractive design of spin injectors into semiconductors is based on a spin pumping from a precessing ferromagnet, typically excited by a microwave magnetic field leading to a high power consumption of the device. Here we describe theoretically a spin injector with greatly reduced energy losses, in which the magnetic dynamics is excited by an elastic wave injected into a ferromagnet-semiconductor heterostructure. To demonstrate the efficient functioning of such an injector, we perform micromagnetoelastic simulations of the coupled elastic and magnetic dynamics in Ni films and Ni/GaAs bilayers. For thick Ni films, it is shown that a monochromatic acoustic wave generates a spin wave with the same frequency and wavelength, which propagates over distances of several…
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