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Non-destructive optical readout of a superconducting qubit

ORAL

Abstract

Entangling superconducting quantum processors via light would enable new means of secure communication and distributed quantum computing. However, transducing quantum signals between these disparate regimes of the electromagnetic spectrum remains an outstanding goal and interfacing superconducting qubits with electro-optic transducers presents significant challenges due to the deleterious effects of optical photons on superconductors. An ideal transducer should leave the state of the qubit unchanged: more precisely, the backaction from the transducer on the qubit should be minimal. Here we demonstrate non-destructive optical readout of a superconducting transmon qubit via a continuously operated electro-optic transducer. The modular nature of the transducer and circuit QED system used in this work enable complete isolation of the qubit from optical photons, and the backaction on the qubit from the transducer is less than that imparted by thermal radiation from the environment. We show that moderate improvements in transducer bandwidth and added noise should enable the transduction of non-classical signals from a superconducting qubit to the optical domain.

Publication: R. D. Delaney, M. D. Urmey, S. Mittal, B. M. Brubaker, J. M. Kindem, P. S. Burns, C. A. Regal and K. W. Lehnert, Non-destructive optical readout of a superconducting qubit, arXiv:2110.09539 (2021).

Presenters

  • Robert D Delaney

    JILA

Authors

  • Robert D Delaney

    JILA

  • Maxwell D Urmey

    JILA

  • Sarang Mittal

    JILA

  • Benjamin M Brubaker

    JILA

  • Jonathan M Kindem

    JILA

  • Peter S Burns

    University of Colorado, Boulder

  • Luca Talamo

    University of Colorado, Boulder

  • Kazemi Adachi

    JILA

  • SHENG-XIANG LIN

    University of Colorado, Boulder

  • Cindy A Regal

    University of Colorado, Boulder, JILA

  • Konrad Lehnert

    JILA