Abstract Quantum error correction is needed for quantum computers to be capable of executing algorithms using hundreds of logical qubits in a fault-tolerant manner. Recent experiments have progressed towards this by demonstrating sufficiently low error rates for state preservation of a single logical qubit. However, quantum computation algorithms also require that these logical qubits can be entangled and that gate operations can be performed on them. Lattice surgery is a technique that offers a practical approach for implementing such gates, particularly in planar quantum processor layouts. Here we demonstrate lattice surgery between two distance-three repetition-code qubits by splitting a single distance-three surface-code qubit. Using a quantum circuit that is fault-tolerant for bit-flip errors, we achieve an improvement in the value of the decoded Z Z logical two-qubit observable compared with a similar non-encoded circuit. We therefore demonstrate the functional building blocks needed for lattice-surgery operations on larger-distance codes based on superconducting circuits.
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Ilya S. Besedin
Paul Scherrer Institute
Michael Kerschbaum
Paul Scherrer Institute
Jonathan Knoll
Nature Physics
ETH Zurich
RWTH Aachen University
Forschungszentrum Jülich
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Besedin et al. (Fri,) studied this question.
synapsesocial.com/papers/6980fb97c1c9540dea80d59e — DOI: https://doi.org/10.1038/s41567-025-03090-6
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