English

Programmable Integrated Magnonic Meshes

Applied Physics 2026-05-04 v1 Materials Science

Abstract

Integrated circuits are a cornerstone of modern information technology, and analog wave-based architectures could enable fast and efficient processing beyond conventional charge electronics. In magnonics, spin waves provide a highly tunable, compact and energy-efficient medium for on-chip microwave signal transport and processing. However, progress has been limited to isolated elements or short devices, severely limiting the overall functional complexity and scalability. Here we realize the key elements of universal magnonic circuitry, using a single-step direct laser writing process in yttrium iron garnet, and monolithically cascade them in multi-stage programmable devices and networks. Using magneto-optical Kerr effect microscopy, we show efficient spin-wave propagation and preserved phase coherence in waveguide structures for hundreds of wavelengths. In coupled waveguides, we observe complete and periodic power transfer over several coupling lengths, and in phase shifters we achieve arbitrary, tunable phase delays. By cascading these elements, we realize programmable splitters, frequency demultiplexers, and phase-controlled 2x2 routers, where output power and relative phase can be programmed on demand via external fields. Finally, we realize programmable magnonic interferometric meshes for on-chip radio-frequency signal routing, with up to six magnonic inputs and outputs and seven cascaded stages, without the need for intermediate amplification. These direct-write cascaded networks bridge a long-standing gap in magnonic scalability, offering a viable pathway toward integrated, large-scale architectures for both classical and quantum processing.

Keywords

Cite

@article{arxiv.2605.00290,
  title  = {Programmable Integrated Magnonic Meshes},
  author = {Piero Florio and Matteo Vitali and Valerio Levati and Rasheed M. Ishola and Luca Ciaccarini Mavilla and Nora Lecis and Carsten Dubs and Riccardo Bertacco and Marco Madami and Silvia Tacchi and Daniela Petti and Edoardo Albisetti},
  journal= {arXiv preprint arXiv:2605.00290},
  year   = {2026}
}

Comments

20 pages, 10 figures

R2 v1 2026-07-01T12:44:36.888Z