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Error-detected entangling gate operations between dual-rail cavity cavity qubit – Part 1

ORAL

Abstract

Encoding dual-rail qubits in superconducting cavities is a promising platform which exhibits a strong hierarchy of errors. In these qubits the dominant error, single photon loss, may be detected and either post-selected or converted to an erasure. The remaining undetectable errors due to cavity dephasing are expected to be much smaller, creating a favorable error hierarchy. It is crucial that this error hierarchy is preserved throughout all qubit operations, especially the two-qubit gate. In part 1, we describe a novel approach for realizing such a two-qubit gate which implements a control-Z gate between dual-rail cavity qubits. This protocol simply relies on engineering a dispersive interaction directly between the two qubits. With detailed analysis of both the photon loss and residual post-selected errors we confirm the error hierarchy is indeed preserved, and that we can now achieve fast, high-fidelity two qubit gates in the dual-rail architecture.

Presenters

  • Taewan Noh

    Quantum Circuits, Inc.

Authors

  • Taewan Noh

    Quantum Circuits, Inc.

  • Nitish Mehta

    Quantum Circuits, Inc.

  • James D Teoh

    Quantum Circuits, Inc.

  • Kevin S Chou

    Quantum Circuits, Inc.

  • Pinlei Lu

    Quantum Circuits Inc, Quantum Circuits, Inc.

  • Gangqiang Liu

    Yale University, Quantum Circuits, Inc.

  • Trevor A Keen

    Quantum Circuits, Inc.

  • Joseph O Yuan

    New York University (NYU), Quantum Circuits, Inc.

  • Shantanu O Mundhada

    Quantum Circuits, Inc., Quantum Circuits Inc

  • Jose Aumentado

    National Institute of Standards and Technology Boulder, National Institute of Standards and Technology, National Institute of Standards and Technology, Quantum Circuits, Inc., Quantum Circuits Inc, Quantum Circuits, Inc.

  • S. Harvey Moseley

    Quantum Circuits Inc, Quantum Circuits, Inc.

  • Robert J Schoelkopf

    Yale University