Transmon qubit readout fidelity at the threshold for quantum error correction without a quantum-limited amplifier

Author:

Chen LiangyuORCID,Li Hang-XiORCID,Lu Yong,Warren Christopher W.ORCID,Križan Christian J.ORCID,Kosen SandokoORCID,Rommel Marcus,Ahmed Shahnawaz,Osman AmrORCID,Biznárová Janka,Fadavi Roudsari AnitaORCID,Lienhard BenjaminORCID,Caputo Marco,Grigoras Kestutis,Grönberg Leif,Govenius Joonas,Kockum Anton Frisk,Delsing PerORCID,Bylander JonasORCID,Tancredi GiovannaORCID

Abstract

AbstractHigh-fidelity and rapid readout of a qubit state is key to quantum computing and communication, and it is a prerequisite for quantum error correction. We present a readout scheme for superconducting qubits that combines two microwave techniques: applying a shelving technique to the qubit that reduces the contribution of decay error during readout, and a two-tone excitation of the readout resonator to distinguish among qubit populations in higher energy levels. Using a machine-learning algorithm to post-process the two-tone measurement results further improves the qubit-state assignment fidelity. We perform single-shot frequency-multiplexed qubit readout, with a 140 ns readout time, and demonstrate 99.5% assignment fidelity for two-state readout and 96.9% for three-state readout–without using a quantum-limited amplifier.

Funder

Vetenskapsrådet

Knut och Alice Wallenbergs Stiftelse

EC | Horizon 2020 Framework Programme

Carl-Zeiss-Stiftung

European Science Foundation

United States Department of Defense | United States Army | U.S. Army Research, Development and Engineering Command | Army Research Office

U.S. Department of Energy

Academy of Finland

Publisher

Springer Science and Business Media LLC

Subject

Computational Theory and Mathematics,Computer Networks and Communications,Statistical and Nonlinear Physics,Computer Science (miscellaneous)

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