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Trapped Ion Quantum Computing Superconducting Qubits

Forbidden transitions in superconducting artificial atoms

arXiv
Authors: Alberto Del Ángel Medina, Théo Sépulcre, Ricardo Gutiérrez-Jáuregui, Anton Frisk Kockum

Year

2026

Paper ID

67797

Status

Preprint

Abstract Read

~2 min

Abstract Words

179

Citations

0

Abstract

Artificial atoms built from Josephson junctions have become a powerful tool to explore the limits of quantum optics due to their strong coupling to electromagnetic fields and their sensitivity to changes at the single-photon level. This sensitivity to quantum fluctuations complements their metrological and computational use, which are based on the precise oscillating frequency of the underlying supercurrents. We present here a theory for Josephson junctions immersed in electromagnetic fields where focus is shifted from temporal correlations and towards spatial ones. Unlike the commonly used circuit and black-box descriptions, our work is based on a microscopic model that enables systematically accounting for the effect of the spatial and vectorial profile of an electromagnetic field over a junction. As an example of the interactions that emerge in such a setup, we investigate the possibility of driving a junction via a quadrupole transition, using typical experimental parameters in existing devices. With the transition being dependent on the gradient of the electric field - rather than its intensity - the junction can be excited in a region where the electric field vanishes.

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  • This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
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  • Artificial atoms built from Josephson junctions have become a powerful tool to explore the limits of quantum optics due to their strong coupling to electromagnetic fields and...

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