Sculpting Spin-Wave Landscapes via Curvature of 2D Magnonic Crystals

Fuente: arXiv
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Autores principales: Wojewoda, Ondřej, Kraft, Robert, Bezsmertna, Olha, Pylypovskyi, Oleksandr, Roldan, Jose A. Fernandez, Ross, Caroline A., Xu, Rui, Bunyaev, Sergey A., Soldatov, Ivan, Schäfer, Rudolf, Abert, Claas, Kakazei, Gleb N., Urbánek, Michal, Makarov, Denys
Formato: Preprint
Publicado: 2026
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author Wojewoda, Ondřej
Kraft, Robert
Bezsmertna, Olha
Pylypovskyi, Oleksandr
Roldan, Jose A. Fernandez
Ross, Caroline A.
Xu, Rui
Bunyaev, Sergey A.
Soldatov, Ivan
Schäfer, Rudolf
Abert, Claas
Kakazei, Gleb N.
Urbánek, Michal
Makarov, Denys
author_facet Wojewoda, Ondřej
Kraft, Robert
Bezsmertna, Olha
Pylypovskyi, Oleksandr
Roldan, Jose A. Fernandez
Ross, Caroline A.
Xu, Rui
Bunyaev, Sergey A.
Soldatov, Ivan
Schäfer, Rudolf
Abert, Claas
Kakazei, Gleb N.
Urbánek, Michal
Makarov, Denys
contents Engineering the dispersion relation is one of the key ingredients enabling the application of spin waves in computational elements. One way to engineer the spin-wave band structure is to create an artificial magnonic crystal, which can be used to design specific band gaps or dispersion branches. However, creating a two-dimensional magnonic crystal usually requires removing material, which dramatically decreases the decay lengths of spin waves. Here, we present a method to manipulate the demagnetizing field landscape by utilizing large-area curvilinear nanotemplates consisting of three-dimensional nanopyramids arranged in a square lattice with a period of 400 nm. In a 50-nm-thick Permalloy film grown on these curvilinear templates, we experimentally observe a complete in-plane band gap together with flat-band modes that exhibit strong real-space localization of the spin waves in the pyramid valleys. Micro-focused Brillouin light scattering measurements corroborate the numerically predicted dispersion and reveal the possibility of opening and closing this gap by varying the external magnetic field. Our results establish three-dimensional-templated continuous films as a versatile platform for two-dimensional signal processing and magnonic computing elements.
format Preprint
id arxiv_https___arxiv_org_abs_2605_05156
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Sculpting Spin-Wave Landscapes via Curvature of 2D Magnonic Crystals
Wojewoda, Ondřej
Kraft, Robert
Bezsmertna, Olha
Pylypovskyi, Oleksandr
Roldan, Jose A. Fernandez
Ross, Caroline A.
Xu, Rui
Bunyaev, Sergey A.
Soldatov, Ivan
Schäfer, Rudolf
Abert, Claas
Kakazei, Gleb N.
Urbánek, Michal
Makarov, Denys
Mesoscale and Nanoscale Physics
Engineering the dispersion relation is one of the key ingredients enabling the application of spin waves in computational elements. One way to engineer the spin-wave band structure is to create an artificial magnonic crystal, which can be used to design specific band gaps or dispersion branches. However, creating a two-dimensional magnonic crystal usually requires removing material, which dramatically decreases the decay lengths of spin waves. Here, we present a method to manipulate the demagnetizing field landscape by utilizing large-area curvilinear nanotemplates consisting of three-dimensional nanopyramids arranged in a square lattice with a period of 400 nm. In a 50-nm-thick Permalloy film grown on these curvilinear templates, we experimentally observe a complete in-plane band gap together with flat-band modes that exhibit strong real-space localization of the spin waves in the pyramid valleys. Micro-focused Brillouin light scattering measurements corroborate the numerically predicted dispersion and reveal the possibility of opening and closing this gap by varying the external magnetic field. Our results establish three-dimensional-templated continuous films as a versatile platform for two-dimensional signal processing and magnonic computing elements.
title Sculpting Spin-Wave Landscapes via Curvature of 2D Magnonic Crystals
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2605.05156