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Benchmarking and fidelity response theory of high-fidelity Rydberg entangling gates

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arxiv 2407.20184 v2 pith:74A263D5 submitted 2024-07-29 quant-ph physics.atom-ph

classification quant-phphysics.atom-ph
keywords fidelitygateerrorinfidelityquantumresponseentanglingexperimental
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abstract

The fidelity of entangling operations is a key figure of merit in quantum information processing, especially in the context of quantum error correction. High-fidelity entangling gates in neutral atoms have seen remarkable advancement recently. A full understanding of error sources and their respective contributions to gate infidelity will enable the prediction of fundamental limits on quantum gates in neutral atom platforms with realistic experimental constraints. In this work, we implement the time-optimal Rydberg CZ gate, design a circuit to benchmark its fidelity, and achieve a fidelity, averaged over symmetric input states, of 0.9971(5), downward-corrected for leakage error, which together with our recent work forms a new state-of-the-art for neutral atoms. The remaining infidelity is explained by an ab initio error model, consistent with our experimental results over a range of gate speeds, with varying contributions from different error sources. Further, we develop a fidelity response theory to efficiently predict infidelity from laser noise with non-trivial power spectral densities and derive scaling laws of infidelity with gate speed. Besides its capability of predicting gate fidelity, we also utilize the fidelity response theory to compare and optimize gate protocols, to learn laser frequency noise, and to study the noise response for quantum simulation tasks. Finally, we predict that a CZ gate fidelity of ${\gtrsim} 0.999$ is feasible with realistic experimental upgrades.

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Forward citations

Cited by 3 Pith papers

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

  1. Transversal Logical Clifford gates on rotated surface codes with reconfigurable neutral atom arrays

    quant-ph 2024-12 conditional novelty 7.0 of 10

    The authors complete a transversal Clifford gate set on rotated surface codes by embedding a fold-transversal S gate inside a syndrome extraction round, with detector construction and numerical support.

  2. High-fidelity universal gates in the $^{171}$Yb ground state nuclear spin qubit

    quant-ph 2024-11 conditional novelty 6.0 of 10

    Researchers demonstrate individually controlled single- and two-qubit gates on ytterbium-171 nuclear spin qubits, reaching 99.72% CZ fidelity with post-selection and introducing a Hessian-based calibration method.

  3. Measurement and feed-forward correction of the fast phase noise of lasers

    physics.atom-ph 2024-11 conditional novelty 5.0 of 10

    A fully fiberized feedforward phase noise eater reduces laser frequency noise by over 20 dB in the 1-10 MHz range and stabilizes a Ramsey signal on cold 87Rb atoms.

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