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Journal Achievements of Modern Radioelectronics №4 for 2026 г.
Article in number:
Performance characteristics of spin-wave YIG-film resonator for low noise frequency synthesizers
Type of article: scientific article
DOI: https://doi.org/10.18127/j20700784-202604-02
UDC: 621.391
Authors:

N.S. Maksimov1, A.V. Korolev2, И.А. Сидоров3

1 National Research University «Moscow Power Engineering Institute» (Moscow, Russia)
2 Bauman Moscow State Technical University (Moscow, Russia)
3 Ltd «Hyperion» (Moscow, Russia)
1 nik.maximovv@yandex.ru, 2 teleret@mail.ru, 3 igorasidorov@yandex.ru

Abstract:

The study of the interaction of an electromagnetic wave in a microstrip transmission line with magnetostatic modes in iron-yttrium garnet (YIG) films is an important applied problem. When designing excitation systems for oscillators, it is necessary to take into account such parameters as the signal return loss, the attenuation level in the resonator and the distribution of the magnetic field near the surface of the film. The most promising direction in the development of JIG generators is the study of the possibility of increasing the stability of resonators and reducing noise levels. In addition, there is a need to perform a numerical calculation of JIG resonators parameters in order to determine the frequency characteristics and build digital twins, which in turn permits for calculation of the basic parameters of microwave generators. In this work we present a magnetostatic wave resonator design, which can be used to build microwave generators.

Pages: 15-20
For citation

Maksimov N.S., Korolev A.V., Sidorov I.A. Performance characteristics of spin-wave YIG-film resonator for low noise frequency
synthesizers. Achieve­ments of modern radioelectronics. 2026. V. 80. № 4. P. 15–20. DOI: https://doi.org/10.18127/j20700784-202604-02
[in Russian]

References
  1. Chenakin A. Microwave frequency synthesizers: A tutorial. IEEE microwave Magazine. 2023. V. 24. № 7. P. 29–40.
  2. Ustinov A.B., Kondrashov A.V., Nikitin A.A., Lebedev V.V., Petrov A.N., Shamraj A.V., Kalinikos B.A. Low phase noise tunable optoelectronic microwave generator based on spin-wave filter. IX Mezhdunar. konf. po fotonike i informacionnoj optike. 2020. С. 205–206.
  3. Liu H. et al. Ultralow-phase-noise and broadband frequency-hopping coupled optoelectronic oscillator under quiet point operation. Photonics Research. 2024. V. 12. № 8. P. 1785–1793.
  4. Luchinin A.S., Malygin I.V. Noise Figure: Estimation of Noise Characteristics of a Radio-Photonic Path Based on the Results of Noise Figure Measurements. Ural Radio Engineering Journal. 2024. V. 8. № 2. P. 223–259.
  5. Chembo Y.K. et al. Determination of phase noise spectra in optoelectronic microwave oscillators: a Langevin approach. IEEE journal of quantum electronics. 2009. V. 45. № 2. P. 178–186.
  6. Lutsev L.V. et al. Spin-wave filters based on thin Y3Fe5O12 films on Gd3Ga5O12 and Si substrates for microwave applications. Journal of Applied Physics. 2020. V. 127. № 18.
  7. Vansteenkiste A., Leliaert J., Dvornic M., Helsen M., Garcia-Sanchez F., B. van Waeyenberge. The desing and verification of MuMax3. AIP Advances. 2014. V. 4. P. 107133.
  8. Kruglyak V.V., Demokritov S.O., Grundler D. Magnonics. Journal of Physics D: Applied Physics. 2010. V. 43. № 26. P. 264001.
  9. Kalinikos B.A., Ustinov A.B., Baruzdin S.A. Spin-volnovye ustrojstva i ekho-processory. Monografiya. Pod red. V.N. Ushakova. M.: Ra­diotekhnika. 2013.
  10. Mahmoud J.A., Ciubotaru F., Vanderveken F., Chumak A.V., Hamdioui S., Adelmann C., Cotofana S. Introduction to Spin Wave Computing. Journal of Applied Physics. 2020. V. 128. 161101.
  11. Kozin A.E., Ustinov AB., Firsenkov A.I. Eksperimental'noe issledovanie nelinejnogo zatuhaniya intensivnyh spinovyh voln v ekranirovannyh ferritovyh plenkah. Sb. mater. Vseros. nauchno-tekhn. konf. «Elektronika i mikroelektronika SVCh». SPb., 2018. P. 603–606.
Date of receipt: 11.08.2025
Approved after review: 05.09.2025
Accepted for publication: 26.03.2026