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While data qubits with a long coherence time are essential for the storage of quantum information, ancilla qubits are pivotal in quantum error correction (QEC) for fault-tolerant quantum computing. The recent development of optical tweezer arrays, such as the preparation of large-scale qubit arrays and high-fidelity gate operations, offers the potential for realizing QEC protocols, and one of the important next challenges is to control and detect ancilla qubits while minimizing atom loss and crosstalk. Here, we present the realization of a hybrid system consisting of a dual-isotope ytterbium (Yb) atom array, in which we can utilize a nuclear spin qubit of fermionic ^171Yb as a data qubit and an optical clock qubit of bosonic ^174Yb as an ancilla qubit with a capacity of non-destructive qubit readout. We evaluate the crosstalk between qubits regarding the impact on the coherence of the nuclear spin qubits from the imaging light for ^174Yb. The Ramsey sequence with a 556 nm probe beam shows negligible influence on the coherence up to 100 ms exposure time. In the Hahn-echo sequence with a 399 nm probe and 556 nm cooling beams for ^174Yb, we observe retaining a 98. 4 (2. 1) % coherence under 30 ms exposure. This result highlights the potential of the hybrid-Yb atom array for ancilla-qubit-based QEC protocols.
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Yuma Nakamura
Toshi Kusano
Rei Yokoyama
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Nakamura et al. (Mon,) studied this question.
www.synapsesocial.com/papers/68e64779b6db6435875d9317 — DOI: https://doi.org/10.48550/arxiv.2406.12247
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