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Non-Gaussian noise spectroscopy with a superconducting qubit sensor

Author(s)
Sung, Youngkyu; Beaudoin, Félix; Norris, Leigh M; Yan, Fei; Kim, David K; Qiu, Jack Y; von Lüpke, Uwe; Yoder, Jonilyn L; Orlando, Terry P; Gustavsson, Simon; Viola, Lorenza; Oliver, William D; ... Show more Show less
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Creative Commons Attribution 4.0 International license https://creativecommons.org/licenses/by/4.0/
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Abstract
© 2019, The Author(s). Accurate characterization of the noise influencing a quantum system of interest has far-reaching implications across quantum science, ranging from microscopic modeling of decoherence dynamics to noise-optimized quantum control. While the assumption that noise obeys Gaussian statistics is commonly employed, noise is generically non-Gaussian in nature. In particular, the Gaussian approximation breaks down whenever a qubit is strongly coupled to discrete noise sources or has a non-linear response to the environmental degrees of freedom. Thus, in order to both scrutinize the applicability of the Gaussian assumption and capture distinctive non-Gaussian signatures, a tool for characterizing non-Gaussian noise is essential. Here, we experimentally validate a quantum control protocol which, in addition to the spectrum, reconstructs the leading higher-order spectrum of engineered non-Gaussian dephasing noise using a superconducting qubit as a sensor. This first experimental demonstration of non-Gaussian noise spectroscopy represents a major step toward demonstrating a complete spectral estimation toolbox for quantum devices.
Date issued
2019
URI
https://hdl.handle.net/1721.1/133727
Department
Massachusetts Institute of Technology. Research Laboratory of Electronics; Massachusetts Institute of Technology. Department of Electrical Engineering and Computer Science; Lincoln Laboratory; Massachusetts Institute of Technology. Department of Physics
Journal
Nature Communications
Publisher
Springer Science and Business Media LLC

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