Detection of Magnetization Dynamics in Metal/Ferrimagnetic Insulator Heterostructure using Ultrafast Resonant Hard X-ray Magnetic Diffraction
ORAL
Abstract
Magnetization dynamics underpin spin transport in ferrimagnetic insulators for spincaloritronics and spintronics. We present a hard X-ray resonant magnetic diffraction study conducted in a pump-probe setup with 100 fs time resolution probing the structural and magnetic responses of a Pt/Gd3Fe5O12 (GdIG)/Gd3Ga5O12 heterostructure to an acoustic pulse. The acoustic impulse had a strain amplitude of 0.1% generated by a 400 nm-wavelength optical pulse absorbed in the Pt layer. The strain due to the expansion of the Pt propagates into GdIG and induces magnetization dynamics apparent in x-ray intensities recorded near the GdIG 444 reflection. The time-domain Fourier transform (FT) has a wavevector dependence that was used to determine the longitudinal acoustic phonon dispersion. Magnetic dynamics were probed using circularly polarized incident X-rays and analyzed using the circular intensity flipping ratio (fc). The time-domain FT of fc was used to probe the wavevector dependence of the magnetization dynamics. The measurement probed a wavevector range spanning a region of the magnon and phonon dispersions where a hybrid magnon-polaron excitation has been predicted. The results provide a way to probe the coupling of structural and magnon dynamics, particularly magnon-phonon interactions.
*The authors acknowledge support from the U.S. DOE, Basic Energy Sciences, Materials Sciences and Engineering Division, under contract no. DE-FG02-04ER46147. Use of the Linac Coherent Light Source(LCLS), SLAC National Accelerator Laboratory, is supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences under Contract No. DE-AC02-76SF00515.
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Presenters
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Deepankar Sri Gyan
- University of Wisconsin-Madison