Operating regimes and materials limits of nonlinear magnon dynamics in Co-doped YIG
arXiv:2605.19647
Abstract
Magnonic information processing uses Kerr-type four-magnon anharmonicity to bound parametrically driven excitations. Here we show that this anharmonicity is constrained by material and mode properties. For the uniform mode of a saturated ferrimagnet, the Holstein--Primakoff reduction gives , where is the anisotropy-field frequency, the mode frequency, and the net spin content fixed by saturation magnetization and mode volume. Requiring the drive to exceed Gilbert damping while keeping the saturated occupation below one gives , reducing to at . We test this criterion for Co-doped yttrium iron garnet using Lindblad calculations with thermal operators. Thermal stability permits low-damping garnet at 50 GHz () and 200 GHz (), but this is not sufficient: the admissible drive window is nearly adiabatic and four orders of magnitude weaker than required. For a nm cell, , three orders below the range showing Fock-state confinement. One mechanism survives: the pair-phase transfer coefficient remains down to , with phase deviations of -- ordered by thermal occupation. These results give a quantitative materials criterion for nonlinear magnonic devices and identify phase encoding as the mechanism accessible to a garnet film.
52 pages, 10 figures, 4 tables