Multiport Impedance Quantization
Firat Solgun, David P. DiVincenzo

TL;DR
This paper introduces a comprehensive multiport impedance quantization method for superconducting quantum systems, enabling accurate modeling, Hamiltonian derivation, and qubit lifetime prediction for complex multi-junction and cavity structures.
Contribution
It extends previous single-port models to multiport systems using impedance fitting and state-space synthesis, improving accuracy and numerical stability in quantum circuit analysis.
Findings
Able to model complex superconducting circuits with multiple ports.
Provides a stable, accurate Hamiltonian derivation method.
Enables computation of qubit T1 times across wide frequency bands.
Abstract
With the increase of complexity and coherence of superconducting systems made using the principles of circuit quantum electrodynamics, more accurate methods are needed for the characterization, analysis and optimization of these quantum processors. Here we introduce a new method of modelling that can be applied to superconducting structures involving multiple Josephson junctions, high-Q superconducting cavities, external ports, and voltage sources. Our technique, an extension of our previous work on single-port structures [1], permits the derivation of system Hamiltonians that are capable of representing every feature of the physical system over a wide frequency band and the computation of T1 times for qubits. We begin with a black box model of the linear and passive part of the system. Its response is given by its multiport impedance function Zsim(w), which can be obtained using a…
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