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Magnon-phonon Fermi resonance in antiferromagnetic CoF 2 .

Thomas W J MetzgerKirill A GrishuninChris ReinhofferRoman M DubrovinAtiqa ArshadIgor IlyakovThales V A G de OliveiraAlexey PonomaryovJan-Christoph DeinertSergey KovalevRoman V PisarevMikhail I KatsnelsonBoris A IvanovPaul H M van LoosdrechtAlexey V KimelEvgeny A Mashkovich
Published in: Nature communications (2024)
Understanding spin-lattice interactions in antiferromagnets is a critical element of the fields of antiferromagnetic spintronics and magnonics. Recently, coherent nonlinear phonon dynamics mediated by a magnon state were discovered in an antiferromagnet. Here, we suggest that a strongly coupled two-magnon-one phonon state in this prototypical system opens a novel pathway to coherently control magnon-phonon dynamics. Utilizing intense narrow-band terahertz (THz) pulses and tunable magnetic fields up to μ 0 H ext  = 7 T, we experimentally realize the conditions of magnon-phonon Fermi resonance in antiferromagnetic CoF 2 . These conditions imply that both the spin and the lattice anharmonicities harvest energy from the transfer between the subsystems if the magnon eigenfrequency f m is half the frequency of the phonon 2f m  = f ph . Performing THz pump-infrared probe spectroscopy in conjunction with simulations, we explore the coupled magnon-phonon dynamics in the vicinity of the Fermi-resonance and reveal the corresponding fingerprints of nonlinear interaction facilitating energy exchange between these subsystems.
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