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The Flux Qubit Revisited to Enhance Coherence and Reproducibility

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arxiv 1508.06299 v4 pith:CRFMRDMP submitted 2015-08-25 quant-ph

classification quant-ph
keywords noisequbitfluxqubitsdephasingflux-insensitivephotonpoint
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abstract

The scalable application of quantum information science will stand on reproducible and controllable high-coherence quantum bits (qubits). Here, we revisit the design and fabrication of the superconducting flux qubit, achieving a planar device with broad frequency tunability, strong anharmonicity, high reproducibility, and relaxation times in excess of $40\,\mu$s at its flux-insensitive point. Qubit relaxation times $T_1$ across 22 qubits are consistently matched with a single model involving resonator loss, ohmic charge noise, and 1/f flux noise, a noise source previously considered primarily in the context of dephasing. We furthermore demonstrate that qubit dephasing at the flux-insensitive point is dominated by residual thermal photons in the readout resonator. The resulting photon shot noise is mitigated using a dynamical decoupling protocol, resulting in $T_2\approx 85\,\mu$s, approximately the $2T_1$ limit. In addition to realizing an improved flux qubit, our results uniquely identify photon shot noise as limiting $T_2$ in contemporary qubits based on transverse qubit-resonator interaction.

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Forward citations

Cited by 2 Pith papers

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

  1. Fast single-qubit gates for continuous dynamically decoupled systems

    quant-ph 2024-12 conditional novelty 6.0 of 10

    Fast non-perturbative single-qubit gates for continuously driven (CDD) qubits are demonstrated on a transmon, with average Clifford fidelity 0.9947(1) and over tenfold coherence improvement.

  2. Quantum bits with Josephson junctions

    quant-ph 2019-08 unverdicted

    A review chapter explaining how Josephson junctions are used to build quantum bits, their circuits, and their applications to quantum computing and quantum optics.

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