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Sub-Harmonic Control of a Fluxonium Qubit via a Purcell-Protected Flux Line

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arxiv 2410.00495 v2 pith:Q3I327LB submitted 2024-10-01 quant-ph

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keywords controlfluxoniumqubitsub-harmonicfrequencystrongchanneldemonstrate
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abstract

Protecting qubits from environmental noise while maintaining strong coupling for fast high-fidelity control is a central challenge for quantum information processing. Here, we demonstrate a control scheme for superconducting fluxonium qubits that eliminates qubit decay through the control channel by suppressing the environmental density of states at the transition frequency. Adding a low-pass filter on the flux line allows for flux-biasing and, at the same time, coherently controlling the fluxonium qubit by parametrically driving it at integer fractions of its transition frequency. We compare the filtered to the unfiltered configuration and find a five times longer $T_1$, and ten times improved $T_2$-echo time in the filtered case. We demonstrate coherent control with up to 11-photon sub-harmonic drives, highlighting the strong non-linearity of the fluxonium potential. Measured Rabi frequencies and drive-induced frequency shifts show excellent agreement with numerical and analytical models. Furthermore, we show the equivalence of a 3-photon sub-harmonic drive to an on-resonance drive by benchmarking sub-harmonic gate fidelities above 99.94$\,$%. These results open up a scalable path for full qubit control through a single Purcell-protected channel, providing strong suppression of control-induced decoherence and enabling wiring-efficient superconducting quantum processors.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Scalable Fluxonium-Transmon Architecture for Error Corrected Quantum Processors

    quant-ph 2025-08 conditional novelty 6.0 of 10

    A hybrid fluxonium-transmon lattice with a two-tone parametric CZ gate is simulated to reach 40 ns gates below 10^-3 estimated error, sidestepping the capacitance and frequency-crowding problems that block fluxonium scaling.

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