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Nonlinear Behavior of Josephson Traveling Wave Parametric Amplifiers

Authors :
Guarcello, Claudio
Ahrens, Felix
Avallone, Guerino
Barone, Carlo
Borghesi, Matteo
Callegaro, Luca
Carapella, Giovanni
Caricato, Anna Paola
Carusotto, Iacopo
Cian, Alessandro
D'Elia, Alessandro
Di Gioacchino, Daniele
Enrico, Emanuele
Falferi, Paolo
Fasolo, Luca
Faverzani, Marco
Ferri, Elena
Filatrella, Giovanni
Gatti, Claudio
Giachero, Andrea
Giubertoni, Damiano
Granata, Veronica
Leo, Angelo
Labranca, Danilo
Ligi, Carlo
Maccarrone, Giovanni
Mantegazzini, Federica
Margesin, Benno
Maruccio, Giuseppe
Mezzena, Renato
Monteduro, Anna Grazia
Moretti, Roberto
Nucciotti, Angelo
Oberto, Luca
Origo, Luca
Komnang, Alex Stephane Piedjou
Pagano, Sergio
Piersanti, Luca
Rettaroli, Alessio
Rizzato, Silvia
Tocci, Simone
Vinante, Andrea
Zannoni, Mario
Source :
IEEE TAS, 34 (3), 1, 1701105 (2024)
Publication Year :
2024

Abstract

Recent advancements in quantum technologies and advanced detection experiments have underscored the pressing need for the detection of exceedingly weak signals within the microwave frequency spectrum. Addressing this challenge, the Josephson Traveling Wave Parametric Amplifier (JTWPA) has been proposed as a cryogenic front-end amplifier capable of approaching the quantum noise limit while providing a relevant bandwidth. This research is centered on a comprehensive numerical investigation of the JTWPA, without resorting to simplifications regarding the nonlinearity of the essential components. Specifically, this study focuses on a thorough examination of the system, characterized by coupled nonlinear differential equations representing all components of the device. Proper input and output signals at the device's boundaries are considered. The analysis of the output signals undergoing the parametric amplification process involves a detailed exploration of phase-space dynamics and Fourier spectral analysis of the output voltage. This study is conducted while considering the parameters ruling the response of the device under pump and signal excitations. In addition to the expected signal amplification, the findings reveal that the nonlinear nature of the system can give rise to unforeseen phenomena, depending on the system's operational conditions, which include: the generation of pump tone harmonics, modulation of the signal gain, and incommensurate frequency generation-effects that are not easily accommodated by simplistic linearized approaches<br />Comment: 5 pages, 4 figures, DARTWARS project - INFN (Italy)

Details

Database :
arXiv
Journal :
IEEE TAS, 34 (3), 1, 1701105 (2024)
Publication Type :
Report
Accession number :
edsarx.2403.01597
Document Type :
Working Paper
Full Text :
https://doi.org/10.1109/TASC.2024.3367615