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DOE OSTI · 3002872

Optimizing qubit control pulses for state preparation

Abstract

In the burgeoning field of quantum computing, the precise design and optimization of quantum pulses are essential for enhancing qubit operation fidelity. This study focuses on refining the pulse engineering techniques for superconducting qubits, employing a detailed analysis of square and Gaussian pulse envelopes under various approximation schemes. We evaluated the effects of coherent errors induced by naive pulse designs. Furthermore, we identified the sources of these errors in the Hamiltonian model’s approximation level. We mitigated these errors through adjustments to the external driving frequency and pulse durations, thus implementing a pulse scheme with stroboscopic error reduction. Our results demonstrate that these refined pulse strategies improve performance and reduce coherent errors. Moreover, the techniques developed herein are applicable across different quantum architectures, such as ion-trap, atomic, and photonic systems.

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BibTeXRIS

Wiening, Annika S. [Westfälische Hochschule, Bocholt (Germany)], Bergendahl, Jörn [Westfälische Hochschule, Bocholt (Germany)], Leyton-Ortega, Vicente [Oak Ridge National Laboratory (ORNL), Oak Ridge, TN (United States)], Nalbach, Peter [Westfälische Hochschule, Bocholt (Germany)]. 2025-01-28. Optimizing qubit control pulses for state preparation. https://doi.org/10.1007/s11128-024-04613-5

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