Spin-wave microscale RF delay lines for mid- and high-frequency 5G band
Abstract
Delay lines (DL) are crucial components in communication systems, providing the required time delays for signal timing, synchronization, and processing. DLs providing nanosecond-scale delays are conventionally based on acoustic waves; however, they cannot operate conveniently in a high-frequency range (EU 5G high-band 24.25–27.5 GHz) required by a modern generation of 5G communication technologies to speed up data transfer. The proposed solution is to use DL based on spin-wave (SW) transmission, as SW devices allow for operation at high-frequency ranges and can be scaled down to a few μm2. In this study, we investigate SW-based DL at the microscale at the frequency ranges of 4, 9, and 25 GHz. The DL is based on SW transmission between a pair of 250 nm wide microwave coplanar waveguide transducers, each with a footprint of 2.25×100μm2, and fabricated with varying mutual distances on a 97 nm thin yttrium iron garnet film. DLs are tested for in-plane SW modes (Damon–Eshbach and backward volume), and depending on the parameters, the extracted delay times are in the range of 6–165 ns. Furthermore, the insertion losses are extracted and compared to other DL concepts. Time-gating analysis of the measured transmission is performed, providing a detailed discussion of individual signal contributions to the measured spectra. Additionally, analytical theory is employed to compare the experimental delay times with analytical calculations and to predict how to adjust the device parameters to obtain variable time delays.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (11)
Kristýna Davídková
Khrystyna O. Levchenko
University of Vienna, Faculty of Physics 1 , Boltzmanngasse 5, Vienna,
Rostyslav O. Serha
University of Vienna, Faculty of Physics 1 , Boltzmanngasse 5, Vienna,
Florian Bruckner
Morris Lindner
INNOVENT e. V. Technologieentwicklung 3 , Prüssingstraße 27 B, Jena,
Carsten Dubs
INNOVENT e. V. Technologieentwicklung 3 , Prüssingstraße 27 B, Jena,
Michal Urbánek
CEITEC BUT, Brno University of Technology 1 , Brno,
Dieter Suess
Qi Wang
Roman V. Verba
V. G. Baryakhtar Institute of Magnetism of the NAS of Ukraine 7 , 36-b Vernadskogo Blvd., Kyiv,
Andrii V. Chumak
University of Vienna, Faculty of Physics 1 , Boltzmanngasse 5, Vienna,