Magnon-polaron control in a surface magnetoacoustic wave resonator

K Kevin Künstle Y Yannik Kunz T Tarek Moussa K Katharina Lasinger K Kei Yamamoto P Philipp Pirro J John F. Gregg A Akashdeep Kamra M Mathias Weiler

Abstract

Abstract Strong coupling between distinct quasiparticles in condensed matter systems gives rise to hybrid states with emergent properties. We demonstrate the hybridization of confined phonons and finite-wavelength magnons, forming a magnon-polaron cavity with tunable coupling strength and spatial confinement controlled by the applied magnetic field direction. Our platform consists of a low-loss, single-crystalline yttrium iron garnet (YIG) film coupled to a zinc oxide (ZnO)-based surface acoustic wave (SAW) resonator. This heterostructure enables exceptionally low magnon-polaron dissipation rates below κ /2 π  < 1.5 MHz. The observed mode hybridization is well described by a phenomenological model incorporating the spatial profiles of magnon and phonon modes. Furthermore, we report the first observation of Rabi-like oscillations in a coupled SAW-spin wave system, revealing the dynamical formation of magnon-polarons in the time domain. These results establish a platform for engineering hybrid spin-acoustic excitations in extended magnetic systems and enable time-resolved studies of magnon-polaron states.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 18, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

K

Kevin Künstle

Y

Yannik Kunz

T

Tarek Moussa

K

Katharina Lasinger

K

Kei Yamamoto

P

Philipp Pirro

J

John F. Gregg

A

Akashdeep Kamra

M

Mathias Weiler