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Crosstalk Suppression for Fault-tolerant Quantum Error Correction with Trapped Ions

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arxiv 2012.11366 v2 pith:GMP7VEOI submitted 2020-12-21 quant-ph

classification quant-ph
keywords crosstalkerrorsquantumerrorqubitsactivelycorrectiondifferent
verification ladder T0 review T1 audit T2 compute T3 formal
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Physical qubits in experimental quantum information processors are inevitably exposed to different sources of noise and imperfections, which lead to errors that typically accumulate hindering our ability to perform long computations reliably. Progress towards scalable and robust quantum computation relies on exploiting quantum error correction (QEC) to actively battle these undesired effects. In this work, we present a comprehensive study of crosstalk errors in a quantum-computing architecture based on a single string of ions confined by a radio-frequency trap, and manipulated by individually-addressed laser beams. This type of errors affects spectator qubits that, ideally, should remain unaltered during the application of single- and two-qubit quantum gates addressed at a different set of active qubits. We microscopically model crosstalk errors from first principles and present a detailed study showing the importance of using a coherent vs incoherent error modelling and, moreover, discuss strategies to actively suppress this crosstalk at the gate level. Finally, we study the impact of residual crosstalk errors on the performance of fault-tolerant QEC numerically, identifying the experimental target values that need to be achieved in near-term trapped-ion experiments to reach the break-even point for beneficial QEC with low-distance topological codes.

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  1. The perfect entangler spectrum as a tool to analyze crosstalk

    quant-ph 2025-06 conditional novelty 7.0 of 10

    A frequency-scanned perfect-entangler-distance spectrum detects and explains crosstalk from spectator qubits during two-qubit gates.

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