Published January 24, 2024 | Version v1
Journal article Open

High-Sensitivity ac-Charge Detection with a MHz-Frequency Fluxonium Qubit

  • 1. Laboratoire Kastler Brossel, Sorbonne Université, ENS-Université PSL, CNRS, Collège de France, 4 place Jussieu, Paris F-75252, France
  • 2. Alice & Bob, 53 Bd du Général Martial Valin, 75015 Paris, France
  • 3. Laboratoire de Physique de l'Ecole normale supérieure, ENS-PSL, CNRS, Inria, Centre Automatique et Systèmes (CAS), Mines Paris, Université PSL, Sorbonne Université, Université Paris Cité, Paris, France
  • 4. Quantronics group, Université Paris-Saclay, CEA, CNRS, SPEC, 91191 Gif-sur-Yvette Cedex, France

Description

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 1.8 MHz. We demonstrate resolved sideband cooling of the "hot" qubit transition with a final ground state population of 97.7%, corresponding to an effective temperature of 23μK. We further demonstrate coherent manipulation with coherence times T1=34μs, T2*=39μs, and single-shot readout of the qubit state. Importantly, by directly addressing the qubit transition with a capacitively coupled waveguide, we showcase its high sensitivity to a radio-frequency field. Through cyclic qubit preparation and interrogation, we transform this low-frequency fluxonium qubit into a frequency-resolved charge sensor. This method results in a charge sensitivity of 33μe/Hz, or an energy sensitivity (in joules per hertz) of 2.8. This method rivals state-of-the-art transport-based devices, while maintaining inherent insensitivity to dc-charge noise. The high charge sensitivity combined with large capacitive shunt unlocks new avenues for exploring quantum phenomena in the 1–10 MHz range, such as the strong-coupling regime with a resonant macroscopic mechanical resonator.

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10.1103_PhysRevX.14.011007.pdf

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Additional details

Identifiers

DOI
10.1103/PhysRevX.14.011007;
arXiv
arXiv:2307.14329;
Crossref Funder ID
10.13039/501100001665; 10.13039/100010663; 10.13039/100010661;

Publishing Information

Journal Title
Physical Review X
Journal Volume
14
Journal Issue
1
Journal Page Range
18 pgs.
ISSN
2160-3308

Optional Information

Contract/Grant/Project number
ANR-21-CE47-0011; ANR-22-PETQ-0006; 101042315; 851740
Notes
Present address: Google Quantum AI, Santa Barbara, California, USA.; Contact Email: samuel.deleglise@lkb.upmc.fr; Record automatically processed
Funding organization
Agence Nationale de la Recherche; H2020 European Research Council; Horizon 2020 Framework Programme