Current-induced modulation of backward spin-waves in metallic microstructures
We performed a propagating spin-wave spectroscopy for backward spin-waves in ferromagnetic metallic microstructures in the presence of electric-current. Even with the smaller current injection of 5×1010 A m−2 into ferromagnetic microwires, the backward spin-waves exhibit a gigantic 200 MHz frequency...
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Veröffentlicht in: | Journal of physics. D, Applied physics Applied physics, 2017-02, Vol.50 (9), p.94004 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | We performed a propagating spin-wave spectroscopy for backward spin-waves in ferromagnetic metallic microstructures in the presence of electric-current. Even with the smaller current injection of 5×1010 A m−2 into ferromagnetic microwires, the backward spin-waves exhibit a gigantic 200 MHz frequency shift and a 15% amplitude change, showing 60 times larger modulation compared to previous reports. Systematic experiments by measuring dependences on a film thickness of mirowire, on the wave-vector of spin-wave, and on the magnitude of bias field, we revealed that for the backward spin-waves a distribution of internal magnetic field generated by electric-current efficiently modulates the frequency and amplitude of spin-waves. The gigantic frequency and amplitude changes were reproduced by a micromagnetics simulation, predicting that the current-injection of 5×1011 A m−2 allows 3 GHz frequency shift. The effective coupling between electric-current and backward spin-waves has a potential to build up a logic control method which encodes signals into the phase and amplitude of spin-waves. The metallic magnonics cooperating with electronics could suggest highly integrated magnonic circuits both in Boolean and non-Boolean principles. |
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ISSN: | 0022-3727 1361-6463 |
DOI: | 10.1088/1361-6463/aa59d2 |