Detecting genuine non-Gaussian entanglement

Fuente: arXiv
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Main Authors: Deside, Serge, Haas, Tobias, Cerf, Nicolas J.
Format: Preprint
Published: 2025
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author Deside, Serge
Haas, Tobias
Cerf, Nicolas J.
author_facet Deside, Serge
Haas, Tobias
Cerf, Nicolas J.
contents Efficiently certifying non-Gaussian entanglement in continuous-variable quantum systems is a central challenge for advancing quantum information processing, photonic quantum computing, and metrology. Here, we put forward continuous-variable counterparts of the recently introduced entanglement criteria based on moments of the partially transposed state, together with simple readout schemes that require only a few replicas of the state, passive linear optics, and particle-number measurements. Our multicopy method enables the detection of genuine non-Gaussian entanglement for various relevant state families overlooked by standard approaches, which includes the entire class of NOON states. Further, it is robust against realistic experimental constraints (losses, noise, and finite statistics), which we demonstrate by extensive numerical simulations.
format Preprint
id arxiv_https___arxiv_org_abs_2504_15831
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Detecting genuine non-Gaussian entanglement
Deside, Serge
Haas, Tobias
Cerf, Nicolas J.
Quantum Physics
Efficiently certifying non-Gaussian entanglement in continuous-variable quantum systems is a central challenge for advancing quantum information processing, photonic quantum computing, and metrology. Here, we put forward continuous-variable counterparts of the recently introduced entanglement criteria based on moments of the partially transposed state, together with simple readout schemes that require only a few replicas of the state, passive linear optics, and particle-number measurements. Our multicopy method enables the detection of genuine non-Gaussian entanglement for various relevant state families overlooked by standard approaches, which includes the entire class of NOON states. Further, it is robust against realistic experimental constraints (losses, noise, and finite statistics), which we demonstrate by extensive numerical simulations.
title Detecting genuine non-Gaussian entanglement
topic Quantum Physics
url https://arxiv.org/abs/2504.15831