Zero-field spin wave turns

Author:

Klíma Jan1ORCID,Wojewoda Ondřej2ORCID,Roučka Václav1,Molnár Tomáš2ORCID,Holobrádek Jakub2ORCID,Urbánek Michal12ORCID

Affiliation:

1. Faculty of Mechanical Engineering, Institute of Physical Engineering, Brno University of Technology 1 , Technická 2, Brno 616 69, Czech Republic

2. CEITEC BUT, Brno University of Technology 2 , Purkyňova 123, Brno 612 00, Czech Republic

Abstract

Spin-wave computing, a potential successor to CMOS-based technologies, relies on the efficient manipulation of spin waves for information processing. While basic logic devices such as magnon transistors, gates, and adders have been experimentally demonstrated, the challenge for complex magnonic circuits lies in steering spin waves through sharp turns. In this study, we demonstrate with micromagnetic simulations and Brillouin light scattering microscopy experiments, that dipolar spin waves can propagate through 90° turns without distortion. The key lies in carefully designed in-plane magnetization landscapes, addressing challenges posed by anisotropic dispersion. The experimental realization of the required magnetization landscape is enabled by spatial manipulation of the uniaxial anisotropy using corrugated magnonic waveguides. The findings presented in this work should be considered in any magnonic circuit design dealing with anisotropic dispersion and spin wave turns.

Funder

Grant Agency of the Czech Republic

MEYS CR

Central European Institute of Technology

Publisher

AIP Publishing

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