Published May 16, 2024 | Version v1
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Efficient multimode Wigner tomography

Description

Advancements in quantum system lifetimes and control have enabled the creation of increasingly complex quantum states, such as those on multiple bosonic cavity modes. When characterizing these states, traditional tomography scales exponentially with the number of modes in both computational and experimental measurement requirement, which becomes prohibitive as the system size increases. Here, we implement a state reconstruction method whose sampling requirement instead scales polynomially with system size, and thus mode number, for states that can be represented within such a polynomial subspace. We demonstrate this improved scaling with Wigner tomography of multimode entangled W states of up to 4 modes on a 3D circuit quantum electrodynamics (cQED) system. This approach performs similarly in efficiency to existing matrix inversion methods for 2 modes, and demonstrates a noticeable improvement for 3 and 4 modes, with even greater theoretical gains at higher mode numbers.

Data availability

The data used in this study is available in the Figshare database at https://doi.org/10.6084/m9.figshare.24158481.

The code used in this study is available in the Figshare database at https://doi.org/10.6084/m9.figshare.24158481.

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Additional details

Identifiers

DOI
10.1038/s41467-024-48573-x
Other
oai:uchicago.tind.io:11806

Funding

Samsung Advanced Institute of Technology Global Research Partnership
ARO
W911NF-15-1-0397
ARO
W911NF-16-1-0349
AFOSR
MURI
Packard Foundation
2013-39273
National Science Foundation
EPiQC
National Science Foundation
DMR-1420709
ARO
W911NF-23-1-0077
ARO
MURI
AFOSR
MURI
AFRL
FA8649-21-P-0781
National Science Foundation
OMA-1936118
National Science Foundation
ERC-1941583
National Science Foundation
OMA-2137642
NTT Research
Packard Foundation
2020-71479
University of Chicago
Prize Postdoctoral Fellowship in Theoretical Quantum Science
Marshall and Arlene Bennett Family Research Program

UChicago Information

Division(s)
Physical Sciences Division, Pritzker School of Molecular Engineering
Department(s)
Physics
Center(s) or Institute(s)
James Franck Institute