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Millikelvin temperature cryo-CMOS multiplexer for scalable quantum device characterisation

ORAL

Abstract

Quantum computers based on solid state qubits have been a subject of rapid development in recent years. In current Noisy Intermediate-Scale Quantum (NISQ) technology, each quantum device is controlled and characterised through a dedicated signal line between room temperature and base temperature of a dilution refrigerator. This approach is not scalable and is currently limiting the development of large-scale quantum system integration and quantum device characterisation. Here we demonstrate a custom designed cryo-CMOS multiplexer operating at 32 mK. The multiplexer exhibits excellent microwave properties up to 10 GHz at room and millikelvin temperatures. We have increased the characterisation throughput with the multiplexer by measuring four high-quality factor superconducting resonators using a single input and output line in a dilution refrigerator. Our work lays the foundation for large-scale microwave quantum device characterisation and has the perspective to address the wiring problem of future large-scale quantum computers.

Publication: Potocnik, et al., arxiv2011.11514 (2021). Accepted in IOP Quantum Science and Technology journal.

Presenters

  • Anton Potocnik

    IMEC

Authors

  • Anton Potocnik

    IMEC

  • Steven Brebels

    IMEC

  • Jeroen Verjauw

    Katholieke Universiteit Leuven, Imec, Katholieke Univ Leuven, IMEC, IMEC

  • Rohith Acharya

    Katholieke Universiteit Leuven, Imec, Katholieke Univ Leuven, IMEC, IMEC

  • Alexander Grill

    IMEC

  • Danny Wan

    Imec, IMEC

  • Massimo Mongillo

    IMEC, Imec

  • Ruoyu Li

    IMEC

  • Tsvetan Ivanov

    Imec, IMEC

  • Steven Van Winckel

    IMEC

  • Fahd A. Mohiyaddin

    imec, IMEC, Imec

  • Bogdan Govoreanu

    imec, IMEC, Imec

  • Jan Craninckx

    IMEC

  • Iuliana P Radu

    Imec, IMEC