Projects of affiliated persons per year
Abstract
Inverse design - specifying a desired functionality and letting a computational algorithm find the optimal structure - has emerged as a powerful paradigm for magnonic device engineering. In this article, we survey the rapidly growing field of inverse-design magnonics, organising it along two axes: the design variables (topology, material parameters, and magnetic field landscape) and the algorithmic toolbox (gradient-free, gradient-based, and neural-network-based methods) together with the differentiable micromagnetic solvers that enable them. We then identify open frontiers that we consider most promising for the next phase of the field: sensitivity analysis and robust design to bridge the gap between simulation and experiment; input shaping and transducer optimisation; the incorporation of nonlinear spin-wave effects as an explicit design resource; spatially structured amplification; self-adapting media and machine-learning-based design; and the long-term vision of a universal, reconfigurable magnonic platform. We argue that magnonics and artificial intelligence are converging from two directions - machine-learning tools for designing magnonic devices, and magnonic devices as hardware for neuromorphic computation - and propose the term AI magnonics to describe this emerging paradigm.
| Original language | English |
|---|---|
| Publisher | arXiv |
| Publication status | Published - 8 Jul 2026 |
Funding
| Funders | Funder number |
|---|---|
| Fonds zur Förderung der wissenschaftlichen Forschung (FWF) | 10.55776/PIN1434524, 10.55776/PAT3864023 |
Austrian Fields of Science 2012
- 103017 Magnetism
- 102019 Machine learning
Keywords
- cond-mat.mes-hall
Projects
- 2 Active
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Scalable Magnonic Neural Networks
Chumak, A. (Project Lead), Süss, D. (Co-Lead), Abert, C. (Co-Lead) & Vilsmeier, F. (Co-Lead)
1/05/25 → 30/04/29
Project: Research funding
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Inverse-Design Micromagnetic-Eddy-Current Solver (IMECS)
Bruckner, F. (Project Lead), Süss, D. (Co-Lead), Chumak, A. (Co-Lead) & Vilsmeier, F. (Project Staff)
1/10/24 → 30/09/28
Project: Research funding
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