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Quantum crosstalk cancellation for fast entangling gates and improved multi-qubit performance

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arxiv 2106.00675 v1 pith:TSZ2Q5P3 submitted 2021-06-01 quant-ph

classification quant-ph
keywords crosstalklevelsatomsgatequantumqubitsartificialcancellation
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abstract

Quantum computers built with superconducting artificial atoms already stretch the limits of their classical counterparts. While the lowest energy states of these artificial atoms serve as the qubit basis, the higher levels are responsible for both a host of attractive gate schemes as well as generating undesired interactions. In particular, when coupling these atoms to generate entanglement, the higher levels cause shifts in the computational levels that leads to unwanted $ZZ$ quantum crosstalk. Here, we present a novel technique to manipulate the energy levels and mitigate this crosstalk via a simultaneous AC Stark effect on coupled qubits. This breaks a fundamental deadlock between qubit-qubit coupling and crosstalk, leading to a 90ns CNOT with a gate error of (0.19 $\pm$ 0.02) $\%$ and the demonstration of a novel CZ gate with fixed-coupling single-junction transmon qubits. Furthermore, we show a definitive improvement in circuit performance with crosstalk cancellation over seven qubits, demonstrating the scalability of the technique. This work paves the way for superconducting hardware with faster gates and greatly improved multi-qubit circuit fidelities.

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Forward citations

Cited by 2 Pith papers

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

  1. Low Crosstalk in a Scalable Superconducting Quantum Lattice

    quant-ph 2025-05 conditional novelty 5.0 of 10

    A 16-qubit square lattice in a tileable 3D-integrated package shows localized inter-qubit couplings and low simultaneous single-qubit gate errors.

  2. Heisenberg-limited calibration of entangling gates with robust phase estimation

    quant-ph 2025-02 conditional novelty 5.0 of 10

    RPE-based closed-loop calibration reduces coherent errors in a superconducting CZ gate, cutting diamond distance to the ideal gate by about half.

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