Artificial spin ice (ASI) systems exhibit fascinating phenomena, such as frustration and the formation of magnetic monopole states, and Dirac strings. However, exploring the wave phenomena in these systems is elusive due to the weak dipolar coupling that governs their interactions. In this study, we demonstrate coherent spin-wave propagation in an hybrid ASI system, which is based on a multilayered ferromagnetic thin film with perpendicular magnetic anisotropy and in-plane magnetized nanoelements embedded within it. We show that this system enables spin-wave transmission over a one-micrometer distance via exchange-mediated coupling between subsystems and evanescent spin-wave tunneling through the out-of-plane magnetized parts. This system overcomes the limitations of purely dipolar interactions in standard ASIs while preserving their fundamental properties. Thus, it provides a platform for studying spin-wave phenomena in frustrated ASI systems and paves the way for exploiting them in analog signal processing with spin waves.
@article{arxiv.2511.21308,
title = {Unveiling Micrometer-Range Spin-Wave Transport in Artificial Spin Ice},
author = {Syamlal Sankaran Kunnath and Mateusz Zelent and Pawel Gruszecki and Maciej Krawczyk},
journal= {arXiv preprint arXiv:2511.21308},
year = {2025}
}
Comments
7 pages main paper paper text and 4 main figures; 6 pages supporting information text and 8 supporting figures