Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current

In the paper, spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spinpolarized electric current are investigated. The linearized Landau-Lifshitz equation in themagnetostatic approximation is used, with the exchange interaction, the dipoledipolemagnetic interacti...

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Main Authors: Gorobets Yuri I., Kulish Volodymyr V.
Format: Article
Language:English
Published: De Gruyter 2015-09-01
Series:Open Physics
Subjects:
Online Access:http://www.degruyter.com/view/j/phys.2015.13.issue-1/phys-2015-0033/phys-2015-0033.xml?format=INT
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spelling doaj-b09db94e653d47bfa11a2165cde371ae2020-11-24T22:36:44ZengDe GruyterOpen Physics2391-54712015-09-0113110.1515/phys-2015-0033phys-2015-0033Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized currentGorobets Yuri I.0Kulish Volodymyr V.1Institute of Magnetism, National Academy of Sciences of Ukraine, 36-b Vernadskogo st., 03142, Kyiv, UkraineNational Technical University of Ukraine “Kyiv Polytechnic Institute” 37 Peremogy prosp., 03056, Kyiv, UkraineIn the paper, spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spinpolarized electric current are investigated. The linearized Landau-Lifshitz equation in themagnetostatic approximation is used, with the exchange interaction, the dipoledipolemagnetic interaction, the anisotropy effects and the dissipation effects taken into account; the influence of the spin-polarized current is considered by the Slonczewski- Berger term. After elimination of the magnetization density perturbation, an equation for the magnetic potential for the above-described spin excitations is obtained. From this equation, a dispersion relation for spin waves in the nanosystem described previously is obtained. Analysis of the dispersion relation shows that the presence of the spinpolarized current can strengthen or weaken the dissipation, creating an “effective dissipation”; the effect is analogous to the “effective dissipation” in a two-layer ferromagnetic film in the presence of a spin-polarized current. Depending on the direction and the density of the current the spinwave can decay faster or slower than in the absence of the current, transform into a self-sustained wave or grow in amplitude, thus leading to a spin wave generation.http://www.degruyter.com/view/j/phys.2015.13.issue-1/phys-2015-0033/phys-2015-0033.xml?format=INTspin wave non-circular ferromagnetic nanotube dipole-exchange theory spin-polarized current
collection DOAJ
language English
format Article
sources DOAJ
author Gorobets Yuri I.
Kulish Volodymyr V.
spellingShingle Gorobets Yuri I.
Kulish Volodymyr V.
Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
Open Physics
spin wave
non-circular ferromagnetic nanotube
dipole-exchange theory
spin-polarized current
author_facet Gorobets Yuri I.
Kulish Volodymyr V.
author_sort Gorobets Yuri I.
title Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
title_short Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
title_full Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
title_fullStr Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
title_full_unstemmed Spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
title_sort spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spin-polarized current
publisher De Gruyter
series Open Physics
issn 2391-5471
publishDate 2015-09-01
description In the paper, spin waves in a ferromagnetic nanotube of an elliptic cross-section in the presence of a spinpolarized electric current are investigated. The linearized Landau-Lifshitz equation in themagnetostatic approximation is used, with the exchange interaction, the dipoledipolemagnetic interaction, the anisotropy effects and the dissipation effects taken into account; the influence of the spin-polarized current is considered by the Slonczewski- Berger term. After elimination of the magnetization density perturbation, an equation for the magnetic potential for the above-described spin excitations is obtained. From this equation, a dispersion relation for spin waves in the nanosystem described previously is obtained. Analysis of the dispersion relation shows that the presence of the spinpolarized current can strengthen or weaken the dissipation, creating an “effective dissipation”; the effect is analogous to the “effective dissipation” in a two-layer ferromagnetic film in the presence of a spin-polarized current. Depending on the direction and the density of the current the spinwave can decay faster or slower than in the absence of the current, transform into a self-sustained wave or grow in amplitude, thus leading to a spin wave generation.
topic spin wave
non-circular ferromagnetic nanotube
dipole-exchange theory
spin-polarized current
url http://www.degruyter.com/view/j/phys.2015.13.issue-1/phys-2015-0033/phys-2015-0033.xml?format=INT
work_keys_str_mv AT gorobetsyurii spinwavesinaferromagneticnanotubeofanellipticcrosssectioninthepresenceofaspinpolarizedcurrent
AT kulishvolodymyrv spinwavesinaferromagneticnanotubeofanellipticcrosssectioninthepresenceofaspinpolarizedcurrent
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