Qubit measurements are central to quantum information processing. In the field of superconducting qubits, standard readout techniques are limited not only by the signal-to-noise ratio, but also by state relaxation during the measurement. In this work, we demonstrate that the limitation due to relaxation can be suppressed by using the many-level Hilbert space of superconducting circuits: In a multilevel encoding, the measurement is corrupted only when multiple errors occur. Employing this technique, we show that we can directly resolve transmon gate errors at the level of one part in 10(3). Extending this idea, we apply the same principles to the measurement of a logical qubit encoded in a bosonic mode and detected with a transmon ancilla, implementing a proposal by Hann et al. [Phys. Rev. A 98, 022305 (2018)]. Qubit state assignments are made based on a sequence of repeated readouts, further reducing the overall infidelity. This approach is quite general, and several encodings are studied; the codewords are more distinguishable when the distance between them is increased with respect to photon loss. The trade-off between multiple readouts and state relaxation is explored and shown to be consistent with the photon-loss model. We report a logical assignment infidelity of 5.8 x 10(-5) for a Fock-based encoding and 4.2 x 10 (-3) for a quantum error correction code (the S = 2, N = 1 binomial code). Our results not only improve the fidelity of quantum information applications, but also enable more precise characterization of process or gate errors.
Journal article
High-Fidelity Measurement of Qubits Encoded in Multilevel Superconducting Circuits
Physical Review X, Vol.10(1), 011001
02/Jan/2020
Published (Version of record)CC BY V4.0, Open Access
Abstract
Details
- Title
- High-Fidelity Measurement of Qubits Encoded in Multilevel Superconducting Circuits
- Creators
- Salvatore S. Elder (Corresponding Author) - Yale UniversityChristopher S. Wang (null) - Yale UniversityPhilip Reinhold (null) - Yale UniversityConnor T. Hann (null) - Yale UniversityKevin S. Chou (null) - Quantum Circuits Inc (United States, New Haven)Brian J. Lester (null) - Atom ComputingSerge Rosenblum (null) - 972WIS_INST___90Luigi Frunzio (null) - University of ChicagoLiang Jiang (null) - Yale UniversityRobert J. Schoelkopf (null) - Yale University
- Resource Type
- Journal article
- Publication Details
- Physical Review X, Vol.10(1), 011001; 02/Jan/2020
- Number of pages
- 10
- Language
- English
- DOI
- https://doi.org/10.1103/PhysRevX.10.011001
- Grant note
- The authors thank C. J. Axline for assistance with sample preparation during an early stage of this experiment, N. Frattini and K. Sliwa for providing the Josephson parametric converter, and N. Ofek for providing the logic for the FPGA control system used in this experiment. Facilities use was supported by the Yale SEAS clean room and Yale Institute for Nanoscience and Quantum Engineering (YINQE). This research was supported by the U.S. Army Research Office Grants No. W911NF-18-1-0212 and No. W911NF-16-1-0349 and by the AFOSR MURI (FA9550-14-1-0052). L. J. acknowledges support from the Packard Foundation (2013-39273). C. T. H. acknowledges support from the NSF GRFP (DGE1752134).
- Record Identifier
- 993263319003596
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