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Strong Dispersive Coupling Between a Mechanical Resonator and a Fluxonium Superconducting Qubit

Nathan R. A. Lee, Yudan Guo, A. Cleland, E. Alex Wollack, R. Gruenke, T. Makihara, Zhaoyou Wang, Taha Rajabzadeh, Wentao Jiang, F. Mayor, Patricio Arrangoiz-Arriola, Christopher J. Sarabalis, A. Safavi-Naeini·April 26, 2023·DOI: 10.1103/prxquantum.4.040342
Physics

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Abstract

We demonstrate strong dispersive coupling between a fluxonium superconducting qubit and a 690 megahertz mechanical oscillator, extending the reach of circuit quantum acousto-dynamics (cQAD) experiments into a new range of frequencies. We have engineered a qubit-phonon coupling rate of $g\approx2\pi\times14~\text{MHz}$, and achieved a dispersive interaction that exceeds the decoherence rates of both systems while the qubit and mechanics are highly nonresonant ($\Delta/g\gtrsim10$). Leveraging this strong coupling, we perform phonon number-resolved measurements of the mechanical resonator and investigate its dissipation and dephasing properties. Our results demonstrate the potential for fluxonium-based hybrid quantum systems, and a path for developing new quantum sensing and information processing schemes with phonons at frequencies below 700 MHz to significantly expand the toolbox of cQAD.

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