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    Impact of leakage on the dynamics of an ST0 qubit implemented in a double quantum dot device

    Javier Oliva del Moral1,2,*, Olatz Sanz Larrarte1, Reza Dastbasteh1, Josu Etxezarreta Martinez1,3, and Rubén M. Otxoa4

    • *Contact author: jolivam@unav.es

    Phys. Rev. B 113, 094310 – Published 17 March, 2026

    DOI: https://doi.org/10.1103/6p7p-w1lc

    Abstract

    Spin qubits in quantum dots are a promising technology for quantum computing due to their fast response time and long coherence times. An electromagnetic pulse is applied to the system for a specific duration to perform a desired rotation. To avoid decoherence, the amplitude and gate time must be highly accurate. In this work, we aim to study the impact of leakage during the gate time evolution of a spin qubit encoded in a double quantum dot device. We prove that, in the weak interaction regime, leakage introduces a shift in the phase of the time evolution operator, causing over- or under-rotations. Indeed, controlling the leakage terms is useful for adjusting the time needed to perform a quantum computation and increasing the coherence time of the readout process. This is crucial for running fault-tolerant algorithms and is beneficial for quantum error mitigation techniques.

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