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Schematics of magnetoelectric transducers consisting of a piezoelectric element and a magnetic spin-wave waveguide formed by a) a ferromagnetic and magnetostrictive bilayer system, and b) by a simultaneously ferromagnetic and magnetostrictive single layer. c) Schematic of a spin-wave transmission experiment including on a magnetic waveguide for spin-wave propagation and two magnetoelectric transducers. Similar to the case of two antennas in Fig. 8, the power transmitted by spin waves can be measured by a vector network analyzer connected to the ground (G) and signal (S) microwave electrodes of the devices.

Schematics of magnetoelectric transducers consisting of a piezoelectric element and a magnetic spin-wave waveguide formed by a) a ferromagnetic and magnetostrictive bilayer system, and b) by a simultaneously ferromagnetic and magnetostrictive single layer. c) Schematic of a spin-wave transmission experiment including on a magnetic waveguide for spin-wave propagation and two magnetoelectric transducers. Similar to the case of two antennas in Fig. 8, the power transmitted by spin waves can be measured by a vector network analyzer connected to the ground (G) and signal (S) microwave electrodes of the devices.

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Preprint
Full-text available
This paper provides a tutorial overview over recent vigorous efforts to develop computing systems based on spin waves instead of charges and voltages. Spin-wave computing can be considered as a subfield of spintronics, which uses magnetic excitations for computation and memory applications. The tutorial combines backgrounds in spin-wave and device...

Similar publications

Preprint
Full-text available
This paper provides a tutorial overview over recent vigorous efforts to develop computing systems based on spin waves instead of charges and voltages. Spin-wave computing can be considered as a subfield of spintronics, which uses magnetic excitations for computation and memory applications. The tutorial combines backgrounds in spin-wave and device...