Аннотация:
The spin valve effect for the superconducting current based on the
superconductor/ferromagnet proximity effect has been studied for a
CoO$_x$/Fe1/Cu/Fe2/Cu/Pb multilayer. {The magnitude of the effect $\Delta T_c
=T_c^{\text{AP}} -T_c^{\text{P}}$, where $T_c^{\text{P}}$ and
$T_c^{\text{AP}}$ are the
superconducting transition temperatures for the parallel (P) and antiparallel
(AP) orientation of magnetizations, respectively, has been measured for
different thicknesses of the Fe1 layer $d_{\text{Fe1}}$. The obtained dependence
of the effect on $d_{\text{Fe1}}$ reveals that $\Delta T_c$} can be
increased in comparison with the case of a half-infinite Fe1 layer considered by
the previous theory. A maximum of the spin valve effect occurs at
$d_{\text{Fe1}}\sim d_{\text{Fe2}}$. At the optimal value of $d_{\text{Fe1}}$
almost full switching from the normal to the
superconducting state when changing the mutual orientation of magnetizations of
the iron layers Fe1 and Fe2 from P to AP is demonstrated.
Поступила в редакцию: 04.03.2013 Исправленный вариант: 12.03.2013
Образец цитирования:
P. V. Leksin, A. A. Kamashev, I. A. Garifullin, Ya. V. Fominov, J. Schumann, C. Hess, V. Kataev, B. Buchner, N. N. Garif'yanov, “Peculiarities of performance of the spin valve for the superconducting
curren”, Письма в ЖЭТФ, 97:8 (2013), 549–553; JETP Letters, 97:8 (2013), 478–482
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\paper Peculiarities of performance of the spin valve for the superconducting
curren
\jour Письма в ЖЭТФ
\yr 2013
\vol 97
\issue 8
\pages 549--553
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\jour JETP Letters
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Эта публикация цитируется в следующих 20 статьяx:
D. V. Seleznev, S. S. Seidov, N. G. Pugach, D. G. Bezymiannykh, S. I. Mukhin, B. G. L'vov, J Supercond Nov Magn, 38:1 (2025)
Alexey Neilo, Sergey Bakurskiy, Nikolay Klenov, Igor Soloviev, Mikhail Kupriyanov, Nanomaterials, 12:24 (2022), 4426
N.G. Pugach, M.O. Safonchik, V.I. Belotelov, T. Ziman, T. Champel, Phys. Rev. Applied, 18:5 (2022)
A. A. Kamashev, A. A. Validov, J. Schumann, V. Kataev, B. Buechner, Ya. V. Fominov, I. A. Garifullin, Beilstein J. Nanotechnol., 9 (2018), 1764–1769
V. N. Kushnir, A. Sidorenko, L. R. Tagirov, M. Yu. Kupriyanov, Functional Nanostructures and Metamaterials For Superconducting Spintronics: From Superconducting Qubits to Self-Organized Nanostructures, Nanoscience and Technology, ed. A. Sidorenko, Springer, 2018, 1–29
L. R. Tagirov, M. Yu. Kupriyanov, V. N. Kushnir, A. Sidorenko, Functional Nanostructures and Metamaterials For Superconducting Spintronics: From Superconducting Qubits to Self-Organized Nanostructures, Nanoscience and Technology, ed. A. Sidorenko, Springer, 2018, 31–47
Kamashev A., Validov A., Garif'yanov N., Fominov Ya., Leksin P., Schumann J., Thomas J., Kataev V., Buechner B., Garifullin I., Moscow International Symposium on Magnetism (Mism 2017), Epj Web of Conferences, 185, eds. Perov N., Semisalova A., E D P Sciences, 2018
I. A. Garifullin, Письма в ЖЭТФ, 106:1 (2017), 58–59; JETP Letters, 106:1 (2017), 57–67
А. А. Камашев, П. В. Лексин, И. Шуманн, И. Томас, Т. Гемминг, В. Катаев, Б. Бюхнер, И. А. Гарифуллин, Письма в ЖЭТФ, 106:12 (2017), 769–774; A. A. Kamashev, P. V. Leksin, J. Schumann, J. Thomas, T. Gemming, V. Kataev, B. Büchner, I. A. Garifullin, JETP Letters, 106:12 (2017), 805–809
N. G. Pugach, M. Safonchik, T. Champel, M. E. Zhitomirsky, E. Lahderanta, M. Eschrig, C. Lacroix, Appl. Phys. Lett., 111:16 (2017), 162601
D. Lenk, R. Morari, V. I. Zdravkov, A. Ullrich, Yu. Khaydukov, G. Obermeier, C. Müller, A. S. Sidorenko, H.-A. Krug von Nidda, S. Horn, L. R. Tagirov, R. Tidecks, Phys. Rev. B, 96:18 (2017)
Lenk D. Zdravkov V.I. Kehrle J.-M. Obermeier G. Ullrich A. Morari R. von Nidda H.-A.K. Mueller C. Kupriyanov M.Yu. Sidorenko A.S. Horn S. Deminov R.G. Tagirov L.R. Tidecks R., Beilstein J. Nanotechnol., 7 (2016), 957–969
Leksin P.V. Kamashev A.A. Schumann J. Kataev V.E. Thomas J. Buechner B. Garifullin I.A., Nano Res., 9:4 (2016), 1005–1011
Leksin P.V. Garif'yanov N.N. Kamashev A.A. Validov A.A. Fominov Ya.V. Schumann J. Kataev V. Thomas J. Buechner B. Garifullin I.A., Phys. Rev. B, 93:10 (2016), 100502