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Impact of spin torques and spin pumping phenomena on magnon-plasmon polaritons in antiferromagnetic insulator-semiconductor heterostructures

Published 11 Mar 2024 in cond-mat.mes-hall | (2403.06934v1)

Abstract: We investigate the impact of spin torque and spin pumping on the surface magnon polariton dispersion in a antiferromagnetic insulator-semiconductor heterostructure. In the bilayer system, the surface magnon polaritons conventionally couple to the plasma-oscillations in the semiconductor via electromagnetic fields. Additionally, magnons in the antiferromagnetic insulator layer may interact with the semiconductor layer via spin torques and their reciprocal phenomena of spin pumping. Due to the spin-to-charge conversion from the spin Hall and inverse spin Hall effects in the semiconductor layer with a strong spin-orbit coupling, this can couple the magnons to the plasmons in the semiconductor layer. Our research reveals that modifications in the mode frequency and the hybridization gap induced by these phenomena depend on the thickness of the antiferromagnetic layer. In thick layers, the spin-pumping contribution to the frequency shift and damping is inversely proportional to the wavelength, while in thin layers it is inversely proportional to the thickness. Furthermore, hybridization of the surface magnon polariton and dispersive magnons in the antiferromagnet is shown to depend on both the thickness and wavelength of the modes.

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References (26)
  1. S. A. Maier, Plasmonics: Fundamentals and Applications (Springer, 2007).
  2. K. Baumgaertl and D. Grundler, Reversal of nanomagnets by propagating magnons in ferrimagnetic yttrium iron garnet enabling nonvolatile magnon memory, Nat. Commun. 14, 1490 (2023).
  3. G. F. Giuliani and G. Vignale, Quantum Theory of the Electron Liquid (Cambridge Univ. Press, 2005).
  4. E. A. Stern and E. R. Callen, Helicons and magnons in magnetically ordered conductors, Phys. Rev. 131, 512 (1963).
  5. V. G. Bar’yakhtar, M. A. Savchenko, and K. N. Stepanov, Interaction of plasma and spin waves in ferromagnetic semiconductors and metals, J. Exp. Theor. Phys. 23, 383 (1966).
  6. G. Baskaran and K. P. Sinha, Plasmon-magnon interaction in magnetic semiconductors, Pramana 1, 31 (1973).
  7. Y. Tserkovnyak, A. Brataas, and G. E. W. Bauer, Enhanced gilbert damping in thin ferromagnetic films, Phys. Rev. Lett. 88, 117601 (2002).
  8. R. E. Camley and D. L. Mills, Surface polaritons on uniaxial antiferromagnets, Phys. Rev. B 26, 1280 (1982).
  9. R. H. Tarkhanyan, D. G. Niarchos, and M. Kafesaki, Influence of external magnetic field on magnon–plasmon polaritons in negative-index antiferromagnet–semiconductor superlattices, J. Magn. Magn. Mater. 322, 603 (2010).
  10. R. Macêdo and T. Dumelow, Tunable all-angle negative refraction using antiferromagnets, Phys. Rev. B 89, 035135 (2014).
  11. A. Pikalov, A. Dorofeenko, and A. Granovsky, Plasmon–magnon interaction in the (graphene–antiferromagnetic insulator) system, JETP Lett. 113, 521 (2021).
  12. H. Y. Yuan and Y. Blanter, Breaking surface plasmon excitation constraint via surface spin waves (2024), arXiv:2402.04626 [cond-mat.mes-hall] .
  13. D. C. Ralph and M. D. Stiles, Spin transfer torques, J. Magn. and Magn. Mater. 320, 1190 (2008).
  14. A. Brataas, A. D. Kent, and H. Ohno, Current-induced torques in magnetic materials, Nat. Mater. 11, 372 (2012).
  15. H. J. Jiao and G. E. W. Bauer, Spin backflow and ac voltage generation by spin pumping and the inverse spin hall effect, Phys. Rev. Lett. 110, 217602 (2013).
  16. K. M. D. Hals, Y. Tserkovnyak, and A. Brataas, Phenomenology of current-induced dynamics in antiferromagnets, Phys. Rev. Lett. 106, 107206 (2011).
  17. G. T. Rado and J. R. Weertman, Spin-wave resonance in a ferromagnetic metal, J. Phys. Chem. Solids 11, 315 (1959).
  18. M. I. Dyakonov and A. V. Khaetskii, Spin hall effect, in Spin Physics in Semiconductors, edited by M. I. Dyakonov (Springer Berlin Heidelberg, Berlin, Heidelberg, 2008) pp. 211–243.
  19. M. Dzero and A. Levchenko, Spin hall conductivity of interacting two-dimensional electron systems, Phys. Rev. B 106, 245302 (2022).
  20. E. G. Mishchenko, A. V. Shytov, and B. I. Halperin, Spin current and polarization in impure two-dimensional electron systems with spin-orbit coupling, Phys. Rev. Lett. 93, 226602 (2004).
  21. J. Tang and R. Cheng, Absence of cross-sublattice spin pumping and spin-transfer torques in collinear antiferromagnets, APL Mater. 11, 111117 (2023).
  22. Y. Kota and H. Imamura, Narrowing of antiferromagnetic domain wall in corundum-type Cr22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTO33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPT by lattice strain, Appl. Phys. Exp. 10, 013002 (2016).
  23. S. Foner, High-field antiferromagnetic resonance in Cr2subscriptCr2{\mathrm{Cr}}_{2}roman_Cr start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPTO3subscriptO3{\mathrm{O}}_{3}roman_O start_POSTSUBSCRIPT 3 end_POSTSUBSCRIPT, Phys. Rev. 130, 183 (1963).
  24. E. J. Samuelsen, M. T. Hutchings, and G. Shirane, Inelastic neutron scattering investigation of spin waves and magnetic interactions in Cr22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTO33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPT, Physica 48, 13 (1970).
  25. G. V. Naik, V. M. Shalaev, and A. Boltasseva, Alternative plasmonic materials: Beyond gold and silver, Adv. Mater. 25, 3264 (2013).
  26. S. M. Rezende, A. Azevedo, and R. L. Rodríguez-Suárez, Introduction to antiferromagnetic magnons, Journal of Applied Physics 126, 151101 (2019).
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