A very-low-voltage double V-shaped meander-line slow-wave structure (ML-SWS) for miniaturized traveling-wave tubes (TWTs) is presented and experimentally characterized. The proposed topology enables strong beam–wave interaction at cathode voltages below 2 kV while maintaining compact dimensions and full compatibility with planar microfabrication processes. The structure is designed to operate over the 17–21-GHz frequency range and to provide a nearly constant phase velocity suitable for low-voltage electron beams. A prototype composed of 40 unit cells was fabricated on an alumina substrate and characterized through cold-test measurements. The dispersion diagram and phase velocity were extracted from the measured phase of the S21 parameter and compared with eigenmode and time-domain simulations, showing good agreement with discrepancies below 10%. Particle-in-cell simulations were subsequently carried out to evaluate the hot-test performance. At a cathode voltage of 1.425 kV and a beam current of 100 mA, the structure achieves a maximum gain of 34.1 dB and a peak beam–wave electronic efficiency of 18% at 18 GHz. With a slow-wave structure (SWS) volume of only 0.203 cm3, the proposed double V-shaped meander-line (ML)-SWS demonstrates high power density and represents a promising solution for compact, low-voltage TWTs intended for aerospace and space applications.

Paterna, G., Stivala, S., Livreri, P., Di Maggio, F., Li Calsi, G., Martorana, R., et al. (2026). Experimental Characterization of Dispersion and Phase Velocity in a Miniaturized Double-V Meander-Line Slow-Wave Structure. IEEE TRANSACTIONS ON ELECTRON DEVICES, 5766-5776.

Experimental Characterization of Dispersion and Phase Velocity in a Miniaturized Double-V Meander-Line Slow-Wave Structure

Giuseppe Paterna
Primo
;
Salvatore Stivala;Patrizia Livreri;G. Li Calsi
Membro del Collaboration Group
;
Alessandro Busacca
Ultimo
2026-09-01

Abstract

A very-low-voltage double V-shaped meander-line slow-wave structure (ML-SWS) for miniaturized traveling-wave tubes (TWTs) is presented and experimentally characterized. The proposed topology enables strong beam–wave interaction at cathode voltages below 2 kV while maintaining compact dimensions and full compatibility with planar microfabrication processes. The structure is designed to operate over the 17–21-GHz frequency range and to provide a nearly constant phase velocity suitable for low-voltage electron beams. A prototype composed of 40 unit cells was fabricated on an alumina substrate and characterized through cold-test measurements. The dispersion diagram and phase velocity were extracted from the measured phase of the S21 parameter and compared with eigenmode and time-domain simulations, showing good agreement with discrepancies below 10%. Particle-in-cell simulations were subsequently carried out to evaluate the hot-test performance. At a cathode voltage of 1.425 kV and a beam current of 100 mA, the structure achieves a maximum gain of 34.1 dB and a peak beam–wave electronic efficiency of 18% at 18 GHz. With a slow-wave structure (SWS) volume of only 0.203 cm3, the proposed double V-shaped meander-line (ML)-SWS demonstrates high power density and represents a promising solution for compact, low-voltage TWTs intended for aerospace and space applications.
set-2026
Paterna, G., Stivala, S., Livreri, P., Di Maggio, F., Li Calsi, G., Martorana, R., et al. (2026). Experimental Characterization of Dispersion and Phase Velocity in a Miniaturized Double-V Meander-Line Slow-Wave Structure. IEEE TRANSACTIONS ON ELECTRON DEVICES, 5766-5776.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/715663
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