Scalable protocol to mitigate crosstalk in universal quantum gates
arXiv:2307.05566 · doi:10.1103/PhysRevApplied.21.024016
Abstract
High-fidelity universal quantum gates are widely acknowledged as essential for scalable quantum computation. However, in solid-state quantum systems, which hold promise as physical implementation platforms for quantum computation, the inevitable crosstalk resulting from interqubit interactions significantly impairs quantum operation performance. Here we propose a scalable protocol to achieve -crosstalk mitigation in universal quantum gates. This method converts the noisy Hamiltonian with crosstalk into a framework that efficiently suppresses all -crosstalk effects, leading to ideal target quantum operations. Specifically, we first analytically derive the -crosstalk mitigation conditions and then apply them to enhance the performance of target universal quantum gates. Moreover, numerical simulations validate the effectiveness of -crosstalk mitigation when multiple qubit gates operate concurrently. As a result, our protocol presents a promising approach for implementing practical parallel quantum gates in large-scale quantum computation scenarios.
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