Controlling the spin-wave nonreciprocity of a crescent-shaped nanowire via curvature and magnetic field

U Uladzislau Makartsou (Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) M Mateusz Gołębiewski (Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) A Attila Kákay (Helmholtz-Zentrum Dresden–Rossendorf, Institut für Ionenstrahlphysik und Materialforschung 1 , D-01328 Dresden,) O Olena Tartakivska (Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,) M Maciej Krawczyk

Abstract

Recent studies on spin-wave propagation in ferromagnetic waveguides have highlighted the role of nonreciprocity resulting from the chiral nature of dipolar interactions in curved elements. However, the impact of spin-wave mode type on nonreciprocity remains unexplored. Using micromagnetic simulations supported by analytical modeling, we systematically analyzed the propagation of edge, fundamental, and width-quantized spin-wave modes in a ferromagnetic nanowire with a crescent-shaped cross section. Our results show that the strength and sign of nonreciprocity depend on the mode type, as well as on the curvature magnitude of the nanowire’s top and bottom surfaces and the strength of the external magnetic field. Interestingly, changing the mode type, for instance, induced by altering the curvature or magnetic field, results in a significant change in the dispersion relation asymmetry. This effect underscores the important role of spin-wave profiles in nonreciprocity, deepens our fundamental understanding of spin-wave dynamics in curved geometries, and paves the way for designing magnonic waveguides with tailored properties.

Article Details

Volume / Issue Vol. 139, Issue 22
Published June 14, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (5)

U

Uladzislau Makartsou

Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

M

Mateusz Gołębiewski

Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

A

Attila Kákay

Helmholtz-Zentrum Dresden–Rossendorf, Institut für Ionenstrahlphysik und Materialforschung 1 , D-01328 Dresden,

O

Olena Tartakivska

Institute of Spintronics and Quantum Information, Faculty of Physics and Astronomy, Adam Mickiewicz University 1 , Uniwersytetu Poznańskiego 2, 61-614 Poznań,

M

Maciej Krawczyk