A tunable Josephson platform to explore many-body quantum optics in circuit-QED
Javier Puertas Martinez, Sebastien Leger, Nicolas Gheeraert, Remy, Dassonneville, Luca Planat, Farshad Foroughi, Yuriy Krupko, Olivier Buisson,, Cecile Naud, Wiebke Guichard, Serge Florens, Izak Snyman, Nicolas Roch

TL;DR
This paper introduces a tunable superconducting circuit platform that enables detailed exploration of many-body quantum optics phenomena in circuit-QED, with precise control over qubit-environment interactions and ultrastrong coupling.
Contribution
It presents a novel device combining a transmon qubit with a high-density multimode environment, allowing independent tuning of qubit frequency and broadening, and provides a comprehensive theoretical model without phenomenological parameters.
Findings
Achieved independent in situ tuning of qubit frequency and broadening.
Demonstrated ultrastrong coupling with multiple environmental modes.
Developed an accurate, parameter-free theoretical model of the system.
Abstract
Coupling an isolated emitter to a single mode of the electromagnetic field is now routinely achieved and well understood. Current efforts aim to explore the coherent dynamics of emitters coupled to several electromagnetic modes (EM). freedom. Recently, ultrastrong coupling to a transmission line has been achieved where the emitter resonance broadens to a significant fraction of its frequency. In this work we gain significantly improved control over this regime. We do so by combining the simplicity of a transmon qubit and a bespoke EM environment with a high density of discrete modes, hosted inside a superconducting metamaterial. This produces a unique device in which the hybridisation between the qubit and up to 10 environmental modes can be monitored directly. Moreover the frequency and broadening of the qubit resonance can be tuned independently of each other in situ. We…
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