Titel:
Titel:
Circuit Design and Experimental Characterization of a Josephson Traveling-Wave Parametric Amplifier
Autoren:
Autoren:
Kißling, Christoph, Physikalisch-Technische Bundesanstalt (PTB), Fachbereich 2.4, Quantenelektronik, ORCID: 0000-0002-4268-2754
Beitragende:
Beitragende:
HostingInstitution: Physikalisch-Technische Bundesanstalt (PTB), ISNI: 0000 0001 2186 1887
Seiten:
Seiten:
xi, 244
Sprachen:
Sprachen:
Englisch
DOI:
DOI:
10.7795/110.20260727
Art der Ressource:
Art der Ressource:
PTB: Dissertation, DINI: DoctoralThesis, DataCite: Dissertation
Verlag:
Verlag:
Physikalisch-Technische Bundesanstalt (PTB)
Erscheinungsjahr:
Erscheinungsjahr:
2026
Dissertationsvermerk:
Dissertationsvermerk:
DoctoralThesis, Technische Universität Ilmenau, Ilmenau
Schriftenreihe:
Schriftenreihe:
PTB-Bericht ; Diss-33
Rechte:
Rechte:
Download for personal/private use only, if your national copyright law allows this kind of use.
Beziehungen:
Beziehungen:
IsPartOf: ISSN 2941-1297
IsIdenticalTo: ISBN 978-3-944659-65-7
Datumsangaben:
Datumsangaben:
Verfügbar: 2026-08-13
Angenommen: 2026-02-24
Datei:
Datei:
Datei herunterladen (application/pdf) 24.8 MB
MD5 Prüfsumme: 02672da3ea34650b87f211369ea759d7
SHA256 Prüfsumme: ceed3f2bcda826387a3bcc982749ef65eeb351ab56fd1a2d048c59b1ae14d563
Stichwörter:
Stichwörter:
traveling-wave parametric amplifier ; Josephson junctions ; SQUIDs ; phase matching ; impedance matching ; multimode dynamics ; frequency-multiplexed qubit readout ; low-noise microwave amplification ; quantum computing hardware ; cryogenic microwave measurements
Zusammenfassung:
Zusammenfassung:
Bringing signals from quantum to classical, from few-photon to many-photon levels for further processing, is a common challenge in rising quantum technologies. These include quantum computing, quantum communication, quantum sensing, radio astronomy, and dark matter searches, typically operating at microwave frequencies and millikelvin temperatures. Superconducting parametric amplifiers, as the first piece in the readout chain, have become a cornerstone of these technologies, since they offer unrivaled noise performance near the quantum-mechanical limit and high gain to surpass the noise of subsequent amplifiers.
A notable implementation is the Josephson traveling-wave parametric amplifier (TWPA), which stands out due to its bandwidth of several Gigahertz and high saturation power, often larger than -100 dBm. These key properties come at the cost of complexity in design and fabrication: TWPA metamaterials often contain several thousands of Josephson junctions. Designing high-gain TWPAs involves three major challenges: ensuring impedance-matching, phase-matching of parametric amplification, and suppressing unwanted processes, all achievable through sub-wavelength dispersion engineering.
This thesis covers the circuit design and analysis, implementation, and experimental characterization of a dispersion-engineered TWPA based on radio-frequency superconducting interference devices (rf-SQUIDs). It focuses on a detailed investigation of dispersion-engineering techniques and their effects on amplifier performance, particularly through the use of time-domain circuit simulations to analyze the multimode dynamics of the circuit. The experimentally realized device features 18 dB of gain, an instantaneous bandwidth spanning from 2.2 to 6.7 GHz, a system noise of 2.5 quanta, and a saturation power of (−86.5 ± 4.0) dBm. With these characteristics, it is suitable for frequency-multiplexed readout of detector arrays or qubits. Its high saturation power, about 10 dB higher than other reported Josephson-junction-based TWPAs, allows increasing the number of qubits per readout line, or decreasing the intermodulation between frequency-multiplexed qubits, both crucial for scaling up quantum computation.

Zitieren

Kißling, C. (2026). Circuit Design and Experimental Characterization of a Josephson Traveling-Wave Parametric Amplifier [Doctoral thesis, Technische Universität Ilmenau]. Physikalisch-Technische Bundesanstalt (PTB). https://doi.org/10.7795/110.20260727

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Autoren

Kißling, Christoph, Physikalisch-Technische Bundesanstalt (PTB), Fachbereich 2.4, Quantenelektronik, ORCID: 0000-0002-4268-2754

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