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    Digitally controlled conveyor-belt spin shuttling in silicon for large-scale quantum computation

    Ryo Nagai*, Takashi Takemoto, Yusuke Wachi, and Hiroyuki Mizuno

    • Center for Exploratory Research, Research and Development Group, Hitachi, Ltd., Kokubunji, Tokyo 185-8601, Japan

    • *Contact author: ryo.nagai.jd@hitachi.com

    Phys. Rev. Applied 24, 064021 – Published 5 December, 2025

    DOI: https://doi.org/10.1103/ng22-2cgg

    Abstract

    We propose a digitally controlled conveyor-belt shuttling method for silicon-based quantum processors, addressing the scalability challenges of conventional analog sinusoidal implementations. By placing a switch matrix and low-pass filters in a cryogenic environment, our approach synthesizes near-sinusoidal waveforms from a limited number of dc voltage levels. Simulation results demonstrate that the proposed method achieves fidelity comparable to analog methods while significantly reducing wiring overhead and power dissipation. Moreover, the design offers robustness against device-level variations, enabling large-scale integration of high-fidelity spin shuttling for quantum error correction.

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