Prospects for the application and properties of spin waves
DOI:
https://doi.org/10.15330/pcss.27.3.519-524Keywords:
polycrystalline magnetic samples, spin waves, scalar magnetic potential, homogeneous wave, exchange interactionAbstract
The paper investigates the dispersion properties of spin waves by linearizing the LLG equation, which is applied to long samples with transverse dimensions on the nanometer scale, assuming their polycrystalline structure. The obtained dispersion law generally coincides with the result of another well-known theoretical model of spin wave propagation, the Kallinikos-Slavin model. The model limitations caused by such assumptions as: absence of Hilbert damping and absence of internal anisotropy (polycrystallinity) are analyzed. Quantitative characteristics are obtained for the most common magnetic materials in practical applications, on the basis of which potential frequency ranges are identified in which the exchange interaction prevails and in which the quadratic law of spin wave dispersion is revealed. The results obtained are promising for future generations of telecommunications technologies and biochemical research due to the well-predicted properties of spin waves and the possibility of miniaturization of devices for detecting electromagnetic radiation in the gigahertz range.
References
K. Davidkova, K. O. Levchenko, R. O. Serha, F. Bruckner, M. Lindner, C. Dubs, M. Urbanek, D. Suess, Q. Wang, R. V. Verba, and A. V. Chumak, Spin-wave microscale RF delay lines for mid- and high-frequency 5G band, J. Appl. Phys. 1138, 143908 (2025); https://doi.org/10.1063/5.0286108.
F. Bruckner, K. Davidkova, C. Abert, et al., Micromagnetic simulation and optimization of spin-wave transducers, Sci. Rep. 15, 19993 (2025); https://doi.org/10.1038/s41598-025-05463-6.
A. Shadman and J.-C. Zhu, Excitation and dynamics of spin solitons in chiral magnetization configuration, Appl. Phys. Lett. 124, 172404 (2024); https://doi.org/10.1063/5.0193810.
M. Garrido-Tamayo, E. Saavedra, C. Saji, et al., Stability and Spin Waves of Skyrmion Tubes in Curved FeGe Nanowires, Nanomaterials 14, 1468 (2024); https://doi.org/10.3390/nano14181468.
Jingwen Li, Chia-Jung Yang, R. Mondal, C. Tzschaschel, S. Pal, A perspective on nonlinearities in coherent magnetization dynamics, Appl. Phys. Lett. 120, 050501 (2022); https://doi.org/10.1063/5.0075999.
L. Giovannini, Spin wave linear response of three-dimensional structures calculated in the frequency domain, Appl. Phys. Lett. 125, 212403 (2024); https://doi.org/10.1063/5.0243269.
Zhan Lv, Zhi-ming Yan, Zhi-xiong Li, X-quang Wang, Yao-zhuang Nie, Qing-lin Xia, Xiu-feng Han, Guang-hua Guo, Polarization-dependent spin wave channels in antiferromagnetic magnonic crystals, Appl. Phys. Lett. 126, 122406 (2025); https://doi.org/10.1063/5.0256440.
D. Girardi, S. Finizio, C. Donnelly, et al., Three-dimensional spin-wave dynamics, localization and interference in a synthetic antiferromagnet, Nat. Commun. 15, 3057 (2024); https://doi.org/10.1038/s41467-024-47339-9.
R. L. Politanskyi, P. M. Shpatar, M. V. Vistak, I. T. Kogut, I. S. Diskovskyi, and Yu. A. Rudyak, Electromagnetic field detectors based on spintronics devices, Phys. Chem. Solid State, 24(3), 433 (2023); https://doi.org/10.15330/pcss.24.3.433-440.
P. Luo, B. Peng, W. Zhang, and W. Zhang, Microwave field vector detector based on the off-resonant spin rectification effect, Appl. Phys. Lett. 125, 222406 (2024); https://doi.org/10.1063/5.0245019.
R. Saha, K. Wu, D. Su, & J.-P. Wang, Spin current nano-oscillator (SCNO) as a potential frequency-based, ultra-sensitive magnetic biosensor: a simulation study, Nanotechnology. 31, 375501 (2020); https://doi.org/10.1088/1361-6528/ab9921.
Haiyan Xia, Qi Zheng, CongpuMu, Chenkun Song, Chendong Jin, Qingfang Liu, Jianbo Wang, Micromagnetic simulation for detection of magnetic nanobeads by spin torque oscillator, Journal of Magnetism and Magnetic Materials. 432, 387 (2017); https://doi.org/10.1016/j.jmmm.2017.01.099.
T. Bottcher, M. Ruhwedel, K O. Levchenko, Q. Wang, H.L. Chumak, M.A. Popov, I.V. Zavislyak, C. Dubs, O. Surzhenko, B. Hillebrands, A.V. Chumak. Fast long-wavelength exchange spin waves in partially compensated Ga:YIG, Appl. Phys. Lett. 120, 102401 (2022); https://doi.org/10.1063/5.0082724.
Wang, Y., Wang, J., Ma, R., and Xiao, Connection between spin-wave polarization and dissipation, J., Phys. Rev. B 111, 134431 (2025); https://doi.org/10.1103/PhysRevB.111.134431.
K. Szulc and M. Krawczyk, Magnetic field-controlled nanoscale spin-wave vertical directional coupler, Appl. Phys. Lett. 126, 232404 (2025); https://doi.org/10.1063/5.0258034.
M. Vanatka, K. Szulc, O. Wojewoda, C. Dubs, A. Chumak, M. Krawczyk, O. V. Dobrovolskiy, J. W. Klos, M. Urbanek. Spin-Wave Dispersion Measurement by Variable-Gap Propagating Spin-Wave Spectroscopy, Phys. Rev. Appl. 16, 057033 (2021); https://doi.org/10.1103/PhysRevApplied.16.054033.
A. Del Giacco, L. Menna, M.J. Gross, O. Wojewoda, V. Levati, M. Urbanek, S. Kurdi, E. Albisetti, D. Petti, & C.A. Ross, Reciprocal Space Approach to Dipolarly Coupled Magnetic Hetero-Structures. arXiv. (2026); https://doi.org/10.48550/arXiv.2605.08667.
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