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99.9%-fidelity in measuring a superconducting qubit
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Despite the significant progress in superconducting quantum computation over the past years, quantum state measurement still lags nearly an order of magnitude behind quantum gate operations in speed and fidelity. The main challenge is that the strong coupling and readout signal used to probe the quantum state may also introduce additional channels which may cause qubit state transitions. Here, we design a novel architecture to implement the long-sought longitudinal interaction scheme between qubits and resonators. This architecture not only provides genuine longitudinal interaction by eliminating residual transversal couplings, but also introduces proper nonlinearity to the resonator that can further minimize decay error and measurement-induced excitation error. Our experimental results demonstrate a measurement fidelity of 99.8% in 202 ns without the need for any first-stage amplification. After subtracting the residual preparation errors, the pure measurement fidelity is above 99.9%. Our scheme is compatible with the multiplexing readout scheme and can be used for quantum error correction.
Forward citations
Cited by 3 Pith papers
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The Arm Qubit: A Superconducting Qubit Co-Designed for Coherence and Coupling
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.
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Quantum logic operations and algorithms in a single 25-level atomic qudit
A single 137Ba+ ion acts as a 25-level qudit with 99.51% heralded SPAM fidelity, and runs Bernstein-Vazirani and Toffoli circuits on up to four virtual qubits.
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Suppression of measurement-induced state transitions in cos{\phi}-coupling transmon readout
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.
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