A tunable Josephson platform to explore many-body quantum optics in circuit-QED

dc.contributor.authorSnyman, Izak
dc.contributor.otherauthorMartínez, Javier Puertas
dc.contributor.otherauthorLéger, Sébastien
dc.contributor.otherauthorGheeraert, Nicolas
dc.contributor.otherauthorDassonneville, Rémy
dc.contributor.otherauthorPlanat, Luca
dc.contributor.otherauthorForoughi, Farshad
dc.contributor.otherauthorKrupko, Yuriy
dc.contributor.otherauthorBuisson, Olivier
dc.contributor.otherauthorNaud, Cécile
dc.contributor.otherauthorHasch-Guichard, Wiebke
dc.contributor.otherauthorFlorens, Serge
dc.contributor.otherauthorRoch, Nicolas
dc.date.accessioned2025-07-10T06:55:10Z
dc.date.issued2019-02
dc.description.abstractThe interaction between light and matter remains a central topic in modern physics despite decades of intensive research. Coupling an isolated emitter to a single mode of the electromagnetic field is now routinely achieved in the laboratory, and standard quantum optics provides a complete toolbox for describing such a setup. Current efforts aim to go further and explore the coherent dynamics of systems containing an emitter coupled to several electromagnetic degrees of freedom. Recently, ultrastrong coupling to a transmission line has been achieved where the emitter resonance broadens to a significant fraction of its frequency, and hybridizes with a continuum of electromagnetic (EM) modes. In this work we gain significantly improved control over this regime. We do so by combining the simplicity and robustness 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 many modes (up to ten in the current device) of its environment can be monitored directly. Moreover the frequency and broadening of the qubit resonance can be tuned independently of each other in situ. We experimentally demonstrate that our device combines this tunability with ultrastrong coupling and a qubit nonlinearity comparable to the other relevant energy scales in the system. We also develop a quantitative theoretical description that does not contain any phenomenological parameters and that accurately takes into account vacuum fluctuations of our large scale quantum circuit in the regime of ultrastrong coupling and intermediate non-linearity. The demonstration of this new platform combined with a quantitative modelling brings closer the prospect of experimentally studying many-body effects in quantum optics. A limitation of the current device is the intermediate nonlinearity of the qubit. Pushing it further will induce fully developed many-body effects, such as a giant Lamb shift or nonclassical states of multimode optical fields. Observing such effects would establish interesting links between quantum optics and the physics of quantum impurities
dc.description.sponsorshipANR under contracts CLOUD (project number ANR-16-CE24-0005).
dc.description.sponsorshipGEARED (project number ANR-14-CE26-0018).
dc.description.sponsorshipUGA AGIR program.
dc.description.sponsorshipNational Research Foundation of South Africa (Grant No. 90657).
dc.description.sponsorshipPICS contract FERMICATS.
dc.description.submitterPM2025
dc.facultyFaculty of Science
dc.identifier0000-0003-4440-6435
dc.identifier.citationPuertas Martínez, J., Léger, S., Gheeraert, N. et al. A tunable Josephson platform to explore many-body quantum optics in circuit-QED. npj Quantum Inf 5, 19 (2019). https://doi.org/10.1038/s41534-018-0104-0
dc.identifier.issn2056-6387 (online)
dc.identifier.other10.1038/s41534-018-0104-0
dc.identifier.urihttps://hdl.handle.net/10539/45372
dc.journal.titlenpj Quantum Information
dc.language.isoen
dc.publisherNature Research
dc.relation.ispartofseriesVol. 5; No. 19
dc.rights© The Author(s) 2019 Open Access. This article is licensed under a Creative Commons Attribution 4.0 International License.
dc.schoolSchool of Physics
dc.subjectModern Physics
dc.subjectElectromagnetic field
dc.subjectcircuit-QED
dc.subjectQuantum optics
dc.subjectQuantum impurities
dc.subject.primarysdgSDG-9: Industry, innovation and infrastructure
dc.subject.secondarysdgSDG-17: Partnerships for the goals
dc.titleA tunable Josephson platform to explore many-body quantum optics in circuit-QED
dc.typeArticle

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