Field-Based Formalism for Calculating Multi-Qubit Exchange Coupling Rates for Transmon Qubits
Ghazi Khan, Thomas E. Roth

TL;DR
This paper introduces a field-based formalism using dyadic Green's functions to efficiently calculate exchange coupling rates in multi-qubit superconducting circuits, improving design accuracy and computational efficiency.
Contribution
It develops a novel framework linking electromagnetic Green's functions to qubit coupling, validated against numerical and experimental data, enhancing multi-qubit superconducting circuit analysis.
Findings
Validated the method with four practical circuits
Achieved accurate coupling rate predictions
Identified zero-crosstalk operating points
Abstract
Superconducting qubits are one of the most mature platforms for quantum computing, but significant performance improvements are still needed. To improve the engineering of these systems, 3D full-wave computational electromagnetics analyses are increasingly being used. Unfortunately, existing analysis approaches often rely on full-wave simulations using eigenmode solvers that are typically cumbersome, not robust, and computationally prohibitive if devices with more than a few qubits are to be analyzed. To improve the characterization of superconducting circuits while circumventing these drawbacks, this work begins the development of an alternative framework that we illustrate in the context of evaluating the qubit-qubit exchange coupling rate between transmon qubits. This is a key design parameter that determines the entanglement rate for fast multi-qubit gate performance and also…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum and electron transport phenomena · Quantum Information and Cryptography
