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Characterizing Multipartite non-Gaussian Entanglement for a Three-Mode Spontaneous Parametric Down-Conversion Process
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4656944
Author(s) Tian, Mingsheng; Xiang, Yu; Sun, Feng-Xiao; Fadel, Matteo; He, Qiongyi
Author(s) at UniBasel Fadel, Matteo
Year 2022
Title Characterizing Multipartite non-Gaussian Entanglement for a Three-Mode Spontaneous Parametric Down-Conversion Process
Journal Physical Review Applied
Volume 18
Number 2
Pages / Article-Number 024065
Abstract Very recently, strongly non-Gaussian states have been observed via a direct three-mode spontaneous parametric down-conversion in a superconducting cavity [Phys. Rev. X 10, 011011 (2020)]. The created multiphoton non-Gaussian correlations are attractive and useful for various quantum information tasks. However, how to detect and classify multipartite non-Gaussian entanglement has not yet been completely understood. Here, we present an experimentally practical method to characterize continuous-variable multipartite non-Gaussian entanglement, by introducing a class of nonlinear squeezing parameters involving accessible higher-order moments of phase-space quadratures. As these parameters can depend on arbitrary operators, we consider their analytical optimization over a set of practical measurements, in order to detect different classes of multipartite non-Gaussian entanglement ranging from fully separable to fully inseparable. We demonstrate that the nonlinear squeezing parameters act as an excellent approximation to the quantum Fisher information within accessible third-order moments. The level of the nonlinear squeezing quantifies the metrological advantage provided by those entangled states. Moreover, by analyzing the above-mentioned experiment, we show that our method can be readily used to confirm fully inseparable tripartite non-Gaussian entangled states by performing a limited number of measurements without requiring full knowledge of the quantum state.
Publisher American Physical Society
ISSN/ISBN 2331-7019
edoc-URL https://edoc.unibas.ch/92008/
Full Text on edoc Available
Digital Object Identifier DOI 10.1103/PhysRevApplied.18.024065
ISI-Number 000876749600002
Document type (ISI) Article
 
   

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