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    Leakage at zero temperature from changes in chemical potential in Majorana qubits

    M. C. Goffage1, A. Alase2, M. C. Cassidy1, and S. N. Coppersmith1

    Phys. Rev. B 112, 165424 – Published 20 October, 2025

    DOI: https://doi.org/10.1103/b6fn-nctx

    Abstract

    Building a fault-tolerant quantum computer requires physical qubits with exceptionally low error rates. Majorana-based tetron qubits are predicted to exhibit error rates that decrease exponentially with inverse temperature and length of each topological superconducting wire in the tetron. In contrast to this prediction, we show that small temporal variations of the chemical potential can cause errors that grow linearly with tetron length at zero temperature. These errors stem from leakage into excited quasiparticle states, which ultimately poison Majorana modes at opposite ends of the tetron, causing errors. We further demonstrate that the dynamics of this leakage is captured by the half Landau-Zener effect, which dictates its dependence on key system parameters such as the superconducting gap, chemical potential variations, and dynamic changes in the spatial profile of Majorana modes. These results motivate further investigations into the impact of leakage on qubit performance and potential mitigation strategies.

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