Dual-rail encoding with superconducting cavities

Author:

Teoh James D.123ORCID,Winkel Patrick123ORCID,Babla Harshvardhan K.123,Chapman Benjamin J.123ORCID,Claes Jahan123ORCID,de Graaf Stijn J.123ORCID,Garmon John W. O.123,Kalfus William D.123,Lu Yao123,Maiti Aniket123,Sahay Kaavya123ORCID,Thakur Neel123ORCID,Tsunoda Takahiro123,Xue Sophia H.123ORCID,Frunzio Luigi123ORCID,Girvin Steven M.123ORCID,Puri Shruti123,Schoelkopf Robert J.123

Affiliation:

1. Department of Applied Physics, Yale University, New Haven, CT 06511

2. Department of Physics, Yale University, New Haven, CT 06511

3. Yale Quantum Institute, Yale University, New Haven, CT 06511

Abstract

The design of quantum hardware that reduces and mitigates errors is essential for practical quantum error correction (QEC) and useful quantum computation. To this end, we introduce the circuit-Quantum Electrodynamics (QED) dual-rail qubit in which our physical qubit is encoded in the single-photon subspace, { | 01 , | 10 } , of two superconducting microwave cavities. The dominant photon loss errors can be detected and converted into erasure errors, which are in general much easier to correct. In contrast to linear optics, a circuit-QED implementation of the dual-rail code offers unique capabilities. Using just one additional transmon ancilla per dual-rail qubit, we describe how to perform a gate-based set of universal operations that includes state preparation, logical readout, and parametrizable single and two-qubit gates. Moreover, first-order hardware errors in the cavities and the transmon can be detected and converted to erasure errors in all operations, leaving background Pauli errors that are orders of magnitude smaller. Hence, the dual-rail cavity qubit exhibits a favorable hierarchy of error rates and is expected to perform well below the relevant QEC thresholds with today’s coherence times.

Funder

DOD | USA | AFC | CCDC | Army Research Office

DOE | Office of Science

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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