Projects per year
Abstract
Magnonics, which harnesses the unique properties of spin waves, offers promising advancements in data processing due to its broad frequency range, nonlinear dynamics, and scalability for on-chip integration. Effective information encoding in magnonic systems requires precise spatial and temporal control of spin waves. Here, we demonstrate the rapid optical control of spin-wave transport in hybrid magnonic-plasmonic structures. By using thermoplasmonic heating in yttrium iron garnet films integrated with gold nanodisk arrays, we achieve a suppression of spin-wave signals by 20 dB using single laser pulses lasting just a few hundred nanoseconds. Our results reveal a strong correlation between plasmonic light absorption and spin-wave manipulation, as supported by micromagnetic simulations that emphasize the crucial role of magnonic refraction. This study establishes thermoplasmonics as a powerful tool for controlling spin-wave propagation, bridging the fields of magnonics and plasmonics, and paving the way for the development of multifunctional hybrid magnonic devices. Thermoplasmonic heating enables efficient and rapid optical control of spin-wave transport in a low-loss magnonic medium.
Original language | English |
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Article number | eads2420 |
Pages (from-to) | 1-10 |
Number of pages | 10 |
Journal | Science Advances |
Volume | 11 |
Issue number | 2 |
DOIs | |
Publication status | Published - 10 Jan 2025 |
MoE publication type | A1 Journal article-refereed |
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- 1 Finished
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Bridging Magnons: Bridging Magnons
Flajsman, L. (Principal investigator)
01/09/2021 → 31/08/2024
Project: Academy of Finland: Other research funding