Alternating spin-polarized current induces parametric resonance in spin valves
Author
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Clerc Gavilán, Marcel
Author
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Coulibaly, Saliya
Author
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Laroze, David
Author
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León, Alejandro O.
Author
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Núñez Vásquez, Álvaro
Admission date
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2015-09-08T18:38:25Z
Available date
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2015-09-08T18:38:25Z
Publication date
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2015
Cita de ítem
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Physical Review B 91, 224426 (2015)
en_US
Identifier
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DOI: 10.1103/PhysRevB.91.224426
Identifier
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https://repositorio.uchile.cl/handle/2250/133491
General note
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Artículo de publicación ISI
en_US
Abstract
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Ferromagnetic systems under the influence of spin-polarized currents exhibit rich spatiotemporal dynamics at nanoscales. We study spin-transfer nano-oscillators driven by the combination of alternating and direct spin-polarized electric currents. We show here that the alternating current induces parametric instabilities on spin valves, that is, the magnetization responses at half the forcing frequency. A spatial self-organization emerges as a result of the oscillatory current, which includes dissipative solitons and Faraday-type waves. The parametric regime is described analytically by means of the Landau-Lifshitz-Gilbert-Slonczewski equation, in good agreement with micromagnetic simulations including the full dipolar field.
en_US
Patrocinador
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Fondo Nacional de Desarrollo Cientifico y Tecnologico
1150507
1120764
1150072