X-parameter based design and simulation of Josephson traveling-wave parametric amplifiers for quantum computing applications
Kaidong Peng, Rick Poore, Philip Krantz, David E. Root, Kevin P., O'Brien

TL;DR
This paper introduces a quantum-adapted X-parameter framework for accurately and efficiently modeling Josephson traveling-wave parametric amplifiers, crucial for quantum computing, including real-world effects and impairments.
Contribution
It develops a comprehensive analysis method for nonlinear quantum circuits using X-parameters, enabling precise modeling of complex JTWPA devices with real-world considerations.
Findings
X-parameters accurately predict gain and quantum efficiency.
Method includes effects of impairments, variations, and mismatches.
Implementation available in commercial and open-source tools.
Abstract
We present an efficient, accurate, and comprehensive analysis framework for generic, multi-port nonlinear parametric circuits, in the presence of dissipation from lossy circuit components, based on "quantum-adapted" X-parameters. We apply this method to Josephson traveling-wave parametric amplifiers (JTWPAs) - a key component in superconducting and spin qubit quantum computing architectures - which are challenging to model accurately due to their thousands of linear and nonlinear circuit components. X-parameters are generated from a harmonic balance solution of the classical nonlinear circuit and then mapped to the field ladder operator basis, so that the energy associated with each of the multiple interacting modes corresponds to photon occupancy, rather than classical power waves. Explicit relations for the quantum efficiency of a generic, multi-port, multi-frequency parametric…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Quantum Information and Cryptography · Quantum and electron transport phenomena
