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Towards a micromechanical qubit based on quantized oscillations in superfluid helium

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arxiv 2409.02028 v2 pith:ALE2VPJW submitted 2024-09-03 cond-mat.mes-hall

Towards a micromechanical qubit based on quantized oscillations in superfluid helium

classification cond-mat.mes-hall
keywords superfluiddevicequantumquantizedbeencharge-neutralcircuitscoherence
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Superconducting circuits can exhibit quantized energy levels and long coherence times. Harnessing the anharmonicity offered by Josephson junctions, such circuits have been successfully employed as qubits, quantum limited amplifiers and sensors. Here, we consider superfluidity as the charge-neutral analogue of superconductivity. Both dissipationless mass flow and Josephson tunneling have been demonstrated in superfluid helium. We propose a quantum device, consisting of a superfluid weak link and a mechanical element. The superfluid motion in this device is quantized. The resulting discrete energy levels are resolvable at millikelvin temperatures essential to maintaining the superfluid state. Appropriate device engineering can yield the necessary nonlinearity to realize qubit functionality. Hence, this device can potentially operate as a charge-neutral, superfluid quantum bit with micron-sized dimensions and millisecond scale coherence time. We show that this quantum regime is within reach for a range of device designs.

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Cited by 3 Pith papers

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    A mechanical squeezed-Fock qubit gravimeter is proposed in which squeezing enhances gravity-induced transitions in a Duffing oscillator while converting dissipation into anisotropic noise.

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    quant-ph 2026-05 conditional novelty 6.0

    A levitated Duffing oscillator driven by a two-phonon pump can sense gravitational acceleration with sensitivity that improves exponentially with mechanical squeezing, until anisotropic decoherence sets an operating window.

  3. Quantum gravimetry with mechanical qubits

    quant-ph 2026-04 unverdicted novelty 6.0

    Direct use of mechanical qubits from levitated particles for gravimetry achieves m^{-1/2} sensitivity scaling and 0.1 μGal/√Hz performance, outperforming traditional schemes by two orders of magnitude while reaching d...