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The quantromon: A qubit-resonator system with orthogonal qubit and readout modes

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arxiv 2501.17439 v1 pith:C5C6A5G6 submitted 2025-01-29 quant-ph

classification quant-ph
keywords couplingdispersivequantromonqubitdemonstratedevicemeasurementmodes
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abstract

The measurement of a superconducting qubit is implemented by coupling it to a resonator. The common choice is transverse coupling, which, in the dispersive approximation, introduces an interaction term which enables the measurement. This cross-Kerr term provides a qubit-state dependent dispersive shift in the resonator frequency with the device parameters chosen carefully to get sufficient signal while minimizing Purcell decay of the qubit. We introduce a two-mode circuit, nicknamed quantromon, with two orthogonal modes implementing a qubit and a resonator. Unlike before, where the coupling term emerges as a perturbative expansion, the quantromon has intrinsic cross-Kerr coupling by design. Our experiments implemented in a hybrid 2D-3D cQED architecture demonstrate some unique features of the quantromon like weak dependence of the dispersive shift on the qubit-resonator detuning and intrinsic Purcell protection. In a tunable qubit-frequency device, we show that the dispersive shift ($2\chi/2\pi$) changes by only $0.8$ MHz while the qubit-resonator detuning ($\Delta/2\pi$) is varied between $0.398$ GHz - $3.288$ GHz. We also demonstrate Purcell protection in a second device where we tune the orthogonality between the two modes. Finally, we demonstrate a single-shot readout fidelity of $98.3\%$ without using a parametric amplifier which is comparable to the state-of-the-art and suggests a potential simplification of the measurement circuitry for scaling up quantum processors.

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Forward citations

Cited by 4 Pith papers

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

  1. The Arm Qubit: A Superconducting Qubit Co-Designed for Coherence and Coupling

    quant-ph 2025-06 conditional novelty 8.0 of 10

    A simulated two-mode 'arm qubit' design predicts a 17 ns CZ gate with error below 1e-4, a 27 ns readout with error 1e-4, and low crosstalk, all without a Purcell filter.

  2. Collapse and Inversion of the Josephson Potential in a Strongly Driven Superconducting Circuit

    quant-ph 2026-07 conditional novelty 7.0 of 10

    The Josephson potential of a transmon collapses and inverts under a strong fast flux drive, dynamically stabilizing the qubit at φ=π, as shown by spectroscopy and readout.

  3. Suppression of measurement-induced state transitions in cos{\phi}-coupling transmon readout

    quant-ph 2025-09 conditional novelty 6.0 of 10

    A cos-phi-coupled transmon readout is experimentally free of measurement-induced state transitions up to roughly 300 photons, with flux-controlled activation of specific transitions.

  4. High-power readout of a transmon qubit using a nonlinear coupling

    quant-ph 2025-07 conditional novelty 6.0 of 10

    A transmon molecule with nonlinear cosφ coupling achieves 99.21% readout fidelity at 89 photons and remains QND with less than 4% errors up to 300 photons, with a theoretical critical photon number of 377.

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