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arXiv · 2003.02775

Suppression of Unwanted $ZZ$ Interactions in a Hybrid Two-Qubit System

Abstract

Mitigating crosstalk errors, whether classical or quantum mechanical, is critically important for achieving high-fidelity entangling gates in multi-qubit circuits. For weakly anharmonic superconducting qubits, unwanted $ZZ$ interactions can be suppressed by combining qubits with opposite anharmonicity. We present experimental measurements and theoretical modeling of two-qubit gate error for gates based on the cross resonance interaction between a capacitively shunted flux qubit and a transmon and demonstrate the elimination of the $ZZ$ interaction.

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Jaseung Ku, Xuexin Xu, Markus Brink, David C. McKay, Jared B. Hertzberg, Mohammad H. Ansari, B. L. T. Plourde. 2020-03-05. Suppression of Unwanted $ZZ$ Interactions in a Hybrid Two-Qubit System. https://doi.org/10.1103/physrevlett.125.200504

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