High-sensitivity AC-charge detection with a MHz-frequency fluxonium qubit
B.-L. Najera-Santos, R. Rousseau, K. Gerashchenko, H. Patange, A., Riva, M. Villiers, T. Briant, P.-F. Cohadon, A. Heidmann, J. Palomo, M., Rosticher, H. le Sueur, A. Sarlette, W. C. Smith, Z. Leghtas, E. Flurin, T., Jacqmin, S. Del\'eglise

TL;DR
This paper introduces a low-frequency fluxonium qubit operating at 1.8 MHz, demonstrating high charge sensitivity and coherence, enabling new quantum sensing and hybrid system applications in the MHz range.
Contribution
The work designs and demonstrates a fluxonium qubit at an unprecedentedly low frequency with high sensitivity and coherence, expanding the operational frequency range of superconducting qubits.
Findings
Achieved a transition frequency of 1.8 MHz for fluxonium qubit.
Demonstrated 97.7% ground state population via sideband cooling.
Charge sensitivity of 33 μe/√Hz, comparable to transport-based devices.
Abstract
Owing to their strong dipole moment and long coherence times, superconducting qubits have demonstrated remarkable success in hybrid quantum circuits. However, most qubit architectures are limited to the GHz frequency range, severely constraining the class of systems they can interact with. The fluxonium qubit, on the other hand, can be biased to very low frequency while being manipulated and read out with standard microwave techniques. Here, we design and operate a heavy fluxonium with an unprecedentedly low transition frequency of . We demonstrate resolved sideband cooling of the ``hot'' qubit transition with a final ground state population of , corresponding to an effective temperature of . We further demonstrate coherent manipulation with coherence times , , and single-shot readout of the qubit…
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