Lattice-tunable substituted iron garnets for low-temperature magnonics
Abstract
The synthesis of nm-thick epitaxial films of iron garnets by physical vapor deposition has opened up exciting opportunities for the on-chip generation and processing of microwave signals encoded in magnons. However, iron garnet thin films suffer from demanding lattice-matching and stoichiometry requirements. Here a new approach to their synthesis is developed, enabling a precise and continuous tuning of iron garnet compositions based on the co-sputtering of binary oxides. By substituting a controlled proportion of iron with additional yttrium, Y(YFe)O films of high crystalline quality are obtained, combining a widely tunable lattice parameter and excellent magnetization dynamics. This enables iron garnet thin films suited for cryogenic applications, which have long remained impractical due to microwave losses caused by paramagnetic garnet substrates. Low-temperature ferromagnetic resonance confirms the elimination of substrate paramagnetic losses for Y(YFe)O films lattice-matched to YScGaO (YSGG), a diamagnetic substrate. The Y(YFe)O system can be matched to other substrates such as (Gd,Y)ScGaO. Bi-substituted films of (BiY)FeO also have ideal lattice matching to YSGG, demonstrating the versatility of this approach. This opens unprecedented options for cation substitutions in iron garnet films, offering a promising avenue to new properties and quantum magnonic devices operating in low-temperature environments.
Cite
@article{arxiv.2407.06850,
title = {Lattice-tunable substituted iron garnets for low-temperature magnonics},
author = {William Legrand and Yana Kemna and Stefan Schären and Hanchen Wang and Davit Petrosyan and Luise Holder and Richard Schlitz and Myriam H. Aguirre and Michaela Lammel and Pietro Gambardella},
journal= {arXiv preprint arXiv:2407.06850},
year = {2025}
}
Comments
Main: 20 pages, 6 figures; Supplement: 24 pages, 18 figures. This is the pre-peer-reviewed version of the work submitted to Adv. Funct. Mater., where it is now published in its final form. All of the data needed to evaluate the conclusions in this work are available in main/supplementary, and have been deposited to the ETH Zurich Research Collection database under DOI 10.3929/ethz-b-000739804