npj Quantum Materials (Feb 2021)

Waveguide bandgap engineering with an array of superconducting qubits

  • Jan David Brehm,
  • Alexander N. Poddubny,
  • Alexander Stehli,
  • Tim Wolz,
  • Hannes Rotzinger,
  • Alexey V. Ustinov

DOI
https://doi.org/10.1038/s41535-021-00310-z
Journal volume & issue
Vol. 6, no. 1
pp. 1 – 5

Abstract

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Abstract Waveguide quantum electrodynamics offers a wide range of possibilities to effectively engineer interactions between artificial atoms via a one-dimensional open waveguide. While these interactions have been experimentally studied in the few qubit limit, the collective properties of such systems for larger arrays of qubits in a metamaterial configuration has so far not been addressed. Here, we experimentally study a metamaterial made of eight superconducting transmon qubits with local frequency control coupled to the mode continuum of a waveguide. By consecutively tuning the qubits to a common resonance frequency we observe the formation of super- and subradiant states, as well as the emergence of a polaritonic bandgap. Making use of the qubits quantum nonlinearity, we demonstrate control over the latter by inducing a transparency window in the bandgap region of the ensemble. The circuit of this work extends experiments with one and two qubits toward a full-blown quantum metamaterial, thus paving the way for large-scale applications in superconducting waveguide quantum electrodynamics.