Hybrid circuit cavity quantum electrodynamics with a micromechanical resonator
J. M. Pirkkalainen, S. U. Cho, Jian Li, G. S. Paraoanu, P. J. Hakonen,, and M. A. Sillanp\"a\"a

TL;DR
This paper demonstrates a hybrid quantum system integrating circuit cavity QED with a micromechanical resonator, enabling coherent control and potential quantum information storage in phonon states.
Contribution
It introduces a novel integration of superconducting qubits with phonons in a micromechanical resonator, showing coherent electromechanical interactions and sideband Rabi oscillations.
Findings
Observation of phonon Stark shift
Splitting of qubit spectral line into motional sidebands
Coherent conversion of qubit excitation to phonons
Abstract
Hybrid quantum systems with inherently distinct degrees of freedom play a key role in many physical phenomena. Famous examples include cavity quantum electrodynamics, trapped ions, or electrons and phonons in the solid state. Here, a strong coupling makes the constituents loose their individual character and form dressed states. Apart from fundamental significance, hybrid systems can be exploited for practical purpose, noteworthily in the emerging field of quantum information control. A promising direction is provided by the combination between long-lived atomic states and the accessible electrical degrees of freedom in superconducting cavities and qubits. Here we integrate circuit cavity quantum electrodynamics with phonons. Besides coupling to a microwave cavity, our superconducting transmon qubit interacts with a phonon mode in a micromechanical resonator, thus representing an atom…
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