English

Non-Gaussian noise spectroscopy with a superconducting qubit sensor

Quantum Physics 2019-10-02 v2

Abstract

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.

Keywords

Cite

@article{arxiv.1903.01043,
  title  = {Non-Gaussian noise spectroscopy with a superconducting qubit sensor},
  author = {Youngkyu Sung and Félix Beaudoin and Leigh M. Norris and Fei Yan and David K. Kim and Jack Y. Qiu and Uwe von Lüpke and Jonilyn L. Yoder and Terry P. Orlando and Lorenza Viola and Simon Gustavsson and William D. Oliver},
  journal= {arXiv preprint arXiv:1903.01043},
  year   = {2019}
}

Comments

21 pages, 12 figures

R2 v1 2026-06-23T07:57:01.558Z