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Robust M{\o}lmer-S{\o}rensen Gate Against Symmetric and Asymmetric Errors

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arxiv 2501.02847 v1 pith:E6NEUPG4 submitted 2025-01-06 quant-ph

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keywords errorsgateasymmetricerrorsuppresssymmetriccorrectiondevelop
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To achieve the entangling gate fidelity above the quantum error correction threshold, it is critical to suppress errors due to experimental imperfection. We consider the M\o lmer-S\o rensen gates in trapped-ion systems, and develop a general approach to suppress a family of noise sources that appeared as either symmetric or asymmetric errors. Using the time-average displacement minimization technique, both symmetric error and displacement-dependent part of the asymmetric errors are eliminated. Then, by analyzing the tangent space of displacement-independent errors, we obtain the analytic form of the generators of the correction operator to the remaining error terms. We then develop a compensation pulse to fully suppress the remaining displacement-independent errors. The effectiveness of our scheme is further verified by numerical analysis, through which we observe a significant reduction of entangling gate infidelity. Our findings enhance gate fidelity and robustness to noise for ion trap quantum computing.

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  1. Scalable suppression of heating errors in large trapped-ion quantum processors

    quant-ph 2025-07 conditional novelty 6.0 of 10

    Optimizing MS-gate pulses against an efficiently computable heating-error bound, via a positive-semidefinite QCQP, suppresses heating-induced infidelity in trapped-ion systems with up to 55 ions in simulation.

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