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Erasure detection of a dual-rail qubit encoded in a double-post superconducting cavity

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arxiv 2311.04423 v2 pith:3R5IGQEZ submitted 2023-11-08 quant-ph

classification quant-ph
keywords erasuredual-railcavitydetectionerrorsuperconductingcodespacecompact
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Qubits with predominantly erasure errors present distinctive advantages for quantum error correction(QEC) and fault tolerant quantum computing. Logical qubits based on dual-rail encoding that exploit erasure detection have been recently proposed in superconducting circuit architectures, either with coupled transmons or cavities. Here, we implement a dual-rail qubit encoded in a compact, double-post superconducting cavity. Using an auxiliary transmon, we perform erasure detection on the dual-rail subspace. We characterize the behaviour of the codespace by a novel method to perform joint-Wigner tomography. This is based on modifying the cross-Kerr interaction between the cavity modes and the transmon. We measure an erasure rate of 3.981 +/- 0.003 (ms)-1 and a residual dephasing error rate up to 0.17 (ms)-1 within the codespace. This strong hierarchy of error rates, together with the compact and hardware-efficient nature of this novel architecture, hold promise in realising QEC schemes with enhanced thresholds and improved scaling.

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Cited by 1 Pith paper

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

  1. Erasure Minesweeper: exploring hybrid-erasure surface code architectures for efficient quantum error correction

    quant-ph 2025-04 conditional novelty 7.0 of 10

    A hybrid surface code with erasure qubits placed in central rows and columns achieves better logical error rates per transmon than all-standard or all-erasure designs for certain near-term transmon budgets.

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