Voir la notice de l'article provenant de la source Math-Net.Ru
@article{IVP_2023_31_2_a6, author = {M. E. Seleznev and Yu. V. Nikulin and Yu. V. Khivintsev and S. L. Vysotsky and A. V. Kozhevnikov and V. K. Sakharov and G. M. Dudko and Yu. A. Filimonov}, title = {Influence of parametric instability on spin pumping by dipole-exchange magnetostatic surface waves in {YIG-pt} structures}, journal = {Izvestiya VUZ. Applied Nonlinear Dynamics}, pages = {225--242}, publisher = {mathdoc}, volume = {31}, number = {2}, year = {2023}, language = {ru}, url = {http://geodesic.mathdoc.fr/item/IVP_2023_31_2_a6/} }
TY - JOUR AU - M. E. Seleznev AU - Yu. V. Nikulin AU - Yu. V. Khivintsev AU - S. L. Vysotsky AU - A. V. Kozhevnikov AU - V. K. Sakharov AU - G. M. Dudko AU - Yu. A. Filimonov TI - Influence of parametric instability on spin pumping by dipole-exchange magnetostatic surface waves in YIG-pt structures JO - Izvestiya VUZ. Applied Nonlinear Dynamics PY - 2023 SP - 225 EP - 242 VL - 31 IS - 2 PB - mathdoc UR - http://geodesic.mathdoc.fr/item/IVP_2023_31_2_a6/ LA - ru ID - IVP_2023_31_2_a6 ER -
%0 Journal Article %A M. E. Seleznev %A Yu. V. Nikulin %A Yu. V. Khivintsev %A S. L. Vysotsky %A A. V. Kozhevnikov %A V. K. Sakharov %A G. M. Dudko %A Yu. A. Filimonov %T Influence of parametric instability on spin pumping by dipole-exchange magnetostatic surface waves in YIG-pt structures %J Izvestiya VUZ. Applied Nonlinear Dynamics %D 2023 %P 225-242 %V 31 %N 2 %I mathdoc %U http://geodesic.mathdoc.fr/item/IVP_2023_31_2_a6/ %G ru %F IVP_2023_31_2_a6
M. E. Seleznev; Yu. V. Nikulin; Yu. V. Khivintsev; S. L. Vysotsky; A. V. Kozhevnikov; V. K. Sakharov; G. M. Dudko; Yu. A. Filimonov. Influence of parametric instability on spin pumping by dipole-exchange magnetostatic surface waves in YIG-pt structures. Izvestiya VUZ. Applied Nonlinear Dynamics, Tome 31 (2023) no. 2, pp. 225-242. http://geodesic.mathdoc.fr/item/IVP_2023_31_2_a6/
[1] Kajiwara Y., Harii K., Takahashi S., Ohe J., Uchida K., Mizuguchi M., Umezawa H., Kawai H., Ando K., Takanashi K., Maekawa S., Saitoh E., “Transmission of electrical signals by spin-wave interconversion in a magnetic insulator”, Nature, 464:7286 (2010), 262–266 | DOI
[2] Sinova J., Valenzuela S. O., Wunderlich J., Back C. H., Jungwirth T., “Spin Hall effects”, Rev. Mod. Phys., 87:4 (2015), 1213–1260 | DOI
[3] Althammer M., “Pure spin currents in magnetically ordered insulator/normal metal heterostructures”, J. Phys. D: Appl. Phys., 51:31 (2018), 313001 | DOI
[4] Brataas A., van Wees B., Klein O., de Loubens G., Viret M., “Spin insulatronics”, Physics Reports, 885 (2020), 1–27 | DOI
[5] Sandweg C. W., Kajiwara Y., Ando K., Saitoh E., Hillebrands B., “Enhancement of the spin pumping efficiency by spin wave mode selection”, Appl. Phys. Lett., 97:25 (2010), 252504 | DOI
[6] Chumak A. V., Serga A. A., Jungfleisch M. B., Neb R., Bozhko D. A., Tiberkevich V. S., Hillebrands B., “Direct detection of magnon spin transport by the inverse spin Hall effect”, Appl. Phys. Lett., 100:8 (2012), 082405 | DOI
[7] Balinsky M., Ranjbar M., Haidar M., Dürrenfeld P., Khartsev S., Slavin A., Åkerman J., Dumas R. K., “Spin pumping and the inverse spin-hall effect via magnetostatic surface spin-wave modes in Yttrium-Iron garnet/platinum bilayers”, IEEE Magn. Lett., 6 (2015), 3000604 | DOI
[8] Iguchi R., Ando K., Qiu Z., An T., Saitoh E., Sato T., “Spin pumping by nonreciprocal spin waves under local excitation”, Appl. Phys. Lett., 102:2 (2013), 022406 | DOI
[9] d'Allivy Kelly O., Anane A., Bernard R., Ben Youssef J., Hahn C., Molpeceres A. H., Carrétéro C., Jacquet E., Deranlot C., Bortolotti P., Lebourgeois R., Mage J.-C., de Loubens G., Klein O., Cros V., Fert A., “Inverse spin Hall effect in nanometer-thick yttrium iron garnet/Pt system”, Appl. Phys. Lett., 103:8 (2013), 082408 | DOI
[10] Uchida K., Xiao J., Adachi H., Ohe J., Takahashi S., Ieda J., Ota T., Kajiwara Y., Umezawa H., Kawai H., Bauer G. E. W., Maekawa S., Saitoh E., “Spin Seebeck insulator”, Nature Materials, 9:11 (2010), 894–897 | DOI
[11] Agrawal M., Vasyuchka V. I., Serga A. A., Kirihara A., Pirro P., Langner T., Jungfleisch M. B., Chumak A. V., Papaioannou E. T., Hillebrands B., “Role of bulk-magnon transport in the temporal evolution of the longitudinal spin-Seebeck effect”, Phys. Rev. B, 89:22 (2014), 224414 | DOI
[12] Sandweg C. W., Kajiwara Y., Chumak A. V., Serga A. A., Vasyuchka V. I., Jungfleisch M. B., Saitoh E., Hillebrands B., “Spin pumping by parametrically excited exchange magnons”, Phys. Rev. Lett., 106:21 (2011), 216601 | DOI
[13] Kurebayashi N., Dzyapko O., Demidov V. E., Fang D., Ferguson A. J. Demokritov S. O., “Controlled enhancement of spin-current emission by three-magnon splitting”, Nature Materials, 10:9 (2011), 660–664 | DOI
[14] Kurebayashi H., Dzyapko O., Demidov V. E., Fang D., Ferguson A. J., Demokritov S. O., “Spin pumping by parametrically excited short-wavelength spin waves”, Appl. Phys. Lett., 99:16 (2011), 162502 | DOI
[15] Manuilov S. A., Du C. H., Adur R., Wang H. L., Bhallamudi V. P., Yang F. Y., Hammel P. C., “Spin pumping from spinwaves in thin film YIG”, Appl. Phys. Lett., 107:4 (2015), 042405 | DOI
[16] Tveten E. G., Brataas A., Tserkovnyak Y., “Electron-magnon scattering in magnetic heterostructures far out of equilibrium”, Phys. Rev. B, 92:18 (2015), 180412 | DOI
[17] Saitoh E., Ueda M., Miyajima H., Tatara G., “Conversion of spin current into charge current at room temperature: Inverse spin-Hall effect”, Appl. Phys. Lett., 88:18 (2006), 182509 | DOI
[18] Maekawa S., Adachi H., Uchida K., Ieda J., Saitoh E., “Spin current: Experimental and theoretical aspects”, J. Phys. Soc. Jpn, 82:10 (2013), 102002 | DOI
[19] Van Hove L., “The occurrence of singularities in the elastic frequency distribution of a crystal”, Phys. Rev., 89:6 (1953), 1189–1193 | DOI | MR | Zbl
[20] Damon R. W., Eshbach J. R., “Magnetostatic modes of a ferromagnet slab”, Journal of Physics and Chemistry of Solids, 19:3–4 (1961), 308–320 | DOI
[21] Nikulin Y. V., Seleznev M. E., Khivintsev Y. V., Sakharov V. K., Pavlov E. S., Vysotskii S. L., Kozhevnikov A. V., Filimonov Y. A., “EMF generation by propagating magnetostatic surface waves in integrated thin-film Pt/YIG structure”, Semiconductors, 54:12 (2020), 1721–1724 | DOI
[22] Seleznev M. E., Nikulin Yu. V., Khivintsev Yu. V., Vysotskii S. L., Kozhevnikov A. V., Sakharov V. K., Dudko G. M., Pavlov E. S., Filimonov Yu. A., “Vliyanie trekhmagnonnykh raspadov na generatsiyu EDS poverkhnostnymi magnitostaticheskimi volnami v integralnykh strukturakh ZhIG– Pt”, Izvestiya vuzov. PND, 30:5 (2022), 617–643 | DOI
[23] De Wames R. E., Wolfram T., “Dipole-exchange spin waves in ferromagnetic films”, J. Appl. Phys., 41:3 (1970), 987–993 | DOI
[24] Seleznev M. E., Nikulin Yu. V., Sakharov V. K., Khivintsev Yu. V., Kozhevnikov A. V., Vysotskii S. L., Filimonov Yu. A., “Vliyanie rezonansnogo vzaimodeistviya poverkhnostnykh magnitostaticheskikh voln s obmennymi modami na generatsiyu EDC v strukturakh YIG/Pt”, ZhTF, 91:10 (2021), 1504–1508 | DOI
[25] Nikulin Yu. V., Kozhevnikov A. V., Vysotskii S. L., Seleznev M. E., Khivintsev Yu. V., Filimonov Yu. A., “Issledovanie interferentsii poverkhnostnykh magnitostaticheskikh voln s pomoschyu obratnogo spinovogo effekta Kholla”, FTT, 64:9 (2022), 1293–1297 | DOI
[26] Gurevich A. G., Melkov G. A., Magnitnye kolebaniya i volny, Fizmatlit, M., 1994, 464 pp.
[27] Vashkovskii A. V., Stalmakhov V. S., Sharaevskii Yu. P., Magnitostaticheskie volny v elektronike sverkhvysokikh chastot, Izdatelstvo Saratovskogo universiteta, Saratov, 1993, 312 pp.
[28] Lvov V. S., Nelineinye spinovye volny, Nauka, M., 1987, 272 pp. | MR
[29] Castel V., Vlietstra N., Ben Youssef J., Van Wees B. J., “Platinum thickness dependence of the inverse spin-Hall voltage from spin pumping in a hybrid yttrium iron garnet/platinum system”, Appl. Phys. Lett., 101:13 (2012), 132414 | DOI
[30] Castel V., Vlietstra N., Van Wees B. J., Ben Youssef J., “Frequency and power dependence of spin-current emission by spin pumping in a thin-film YIG/Pt system”, Phys. Rev. B, 86:13 (2012), 134419 | DOI
[31] Jungfleisch M. B., Chumak A. V., Kehlberger A., Lauer V., Kim D. H., Onbasli M. C., Ross C. A., Kläui M., Hillebrands B., “Thickness and power dependence of the spin-pumping effect in Y3Fe5O12/Pt heterostructures measured by the inverse spin Hall effect”, Phys. Rev. B, 91:13 (2015), 134407 | DOI
[32] Watanabe S., Hirobe D., Shiomi Y., Iguchi R., Daimon S., Kameda M., Takahashi S., Saitoh E., “Generation of megahertz-band spin currents using nonlinear spin pumping”, Scientific Reports, 7:1 (2017), 4576 | DOI
[33] Ando K., Saitoh E., “Spin pumping driven by bistable exchange spin waves”, Phys. Rev. Lett., 109:2 (2012), 026602 | DOI | MR
[34] Khivintsev Y. V., Filimonov Y. A., Nikitov S. A., “Spin wave excitation in yttrium iron garnet films with micron-sized antennas”, Appl. Phys. Lett., 106:5 (2015), 052407 | DOI
[35] Nur Kholid F., Hamara D., Terschanski M., Mertens F., Bossini D., Cinchetti M., McKenzie-Sell L., Patchett J., Petit D., Cowburn R., Robinson J., Barker J., Ciccarelli C., “Temperature dependence of the picosecond spin Seebeck effect”, Appl. Phys. Lett., 119:3 (2021), 032401 | DOI | MR
[36] Mednikov A. M., “Nelineinye effekty pri rasprostranenii poverkhnostnykh spinovykh voln v plenkakh ZhIG”, FTT, 23:1 (1981), 242–245
[37] Temiryazev A. G., “Mekhanizm preobrazovaniya chastoty poverkhnostnoi magnitostaticheskoi volny v usloviyakh trekhmagnonnogo raspada”, FTT, 29:2 (1987), 313–319
[38] Polzikova N. I., Raevskii A. O., Temiryazev A. G., “Vliyanie obmennogo vzaimodeistviya na granitsu trekhmagnonnogo raspada volny Deimona–Eshbakha v tonkikh plenkakh ZhIG”, FTT, 26:11 (1984), 3506–3508
[39] Kazakov G. T., Kozhevnikov A. V., Filimonov Yu. A., “Chetyrekhmagnonnyi raspad poverkhnostnykh magnitostaticheskikh voln v plenkakh zhelezo-ittrievogo granata”, FTT, 39:2 (1997), 330–338
[40] Kazakov G. T., Kozhevnikov A. V., Filimonov Yu. A., “Vliyanie parametricheski vozbuzhdennykh spinovykh voln na dispersiyu i zatukhanie poverkhnostnykh magnitostaticheskikh voln v ferritovykh plenkakh”, ZhETF, 115:1 (1999), 318–332
[41] Gulyaev Yu. V., Bugaev A. S., Zilberman P. E., Ignatev I. A., Konovalov A. G., Lugovskoi A. V., Mednikov A. M., Nam B. P., Nikolaev E. I., “Gigantskie ostsillyatsii prokhozhdeniya kvazipoverkhnostnoi spinovoi volny cherez tonkuyu plenku zhelezo-ittrievogo granata”, Pisma v ZhETF, 30:9 (1979), 600–603
[42] Gulyaev Yu. V., Zilberman P. E., Lugovskoi A. V., “Vliyanie neodnorodnogo obmena i dissipatsii na rasprostranenie poverkhnostnykh voln Deimona-Eshbakha v ferromagnitnoi plastine”, FTT, 23:4 (1981), 1136–1142
[43] Donahue M. J., Porter D. G., OOMMF User’s Guide, Interagency Report NISTIR 6376, National Institute of Standards and Technology, Gaithersburg, MD, 1999, 94 pp. | DOI
[44] Dvornik M., Au Y., Kruglyak V. V., “Micromagnetic Simulations in Magnonics”, Magnonics, v. 125, Topics in Applied Physics, eds. Demokritov S., Slavin A., Springer, Berlin, 2013, 101–115 | DOI
[45] Sakharov V. K., Khivintsev Yu. V., Dudko G. M., Dzhumaliev A. S., Vysotskii S. L., Stognii A. I., Filimonov Yu. A., “Osobennosti rasprostraneniya spinovykh voln v magnonnykh kristallakh s neodnorodnym raspredeleniem namagnichennosti po tolschine”, FTT, 64:9 (2022), 1255–1262 | DOI
[46] Bugaev A. S., Galkin O. L., Gulyaev Yu. V., Zilberman P. E., “Uvlechenie elektronov magnitostaticheskoi volnoi v sloistoi strukture ferrit-metall”, Pisma v ZhTF, 8:8 (1982), 485–488
[47] Veselov A. G., Vysotskii S. L., Kazakov G. T., Sukharev A. G., Filimonov Yu. A., “Poverkhnostnye magnitostaticheskie volny v metallizirovannykh plenkakh ZhIG”, Radiotekhnika i elektronika, 39:12 (1994), 2067–2074
[48] Filimonov Yu. A., Khivintsev Yu. V., “Vzaimodeistvie poverkhnostnoi magnitostaticheskoi i ob'emnykh uprugikh voln v metallizirovannoi strukture ferromagnetik-dielektrik”, Radiotekhnika i elektronika, 47:8 (2002), 1002–1007
[49] Sakharov V. K., Khivintsev Yu. V., Vysotskii S. L., Stognii A. I., Dudko G. M., Filimonov Yu. A., “Vliyanie moschnosti vkhodnogo signala na rasprostranenie poverkhnostnykh magnitostaticheskikh voln v plenkakh zhelezo-ittrievogo granata na podlozhkakh kremniya”, Izvestiya vuzov. PND, 25:1 (2017), 35–51 | DOI | MR