E141-08 - Forschungsbereich Quantum Optics and Quantum Information
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Journal:
Quantum
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ISSN:
2521-327X
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Date (published):
3-Feb-2026
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Number of Pages:
24
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Publisher:
VEREIN FORDERUNG OPEN ACCESS PUBLIZIERENS QUANTENWISSENSCHAF
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Peer reviewed:
Yes
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Keywords:
entanglement theory
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Abstract:
Characterizing entanglement of systems composed of multiple particles is a very complex problem that is attracting increasing attention across different disciplines related to quantum physics. The task becomes even more complex when the particles have many accessible levels, i.e., they are of high dimension, which leads to a potentially high-dimensional multipartite entangled state. These are important resources for an ever-increasing number of tasks, especially when a network of parties needs to share highly entangled states, e.g., for communicating more efficiently and securely. For these applications, as well as for purely theoretical arguments, it is important to be able to certify both the high-dimensional and the genuine multipartite nature of entangled states, possibly based on simple measurements. Here we derive a novel method that achieves this and improves over typical entanglement witnesses like the fidelity with respect to states of a Greenberger-Horne-Zeilinger (GHZ) form, without needing more complex measurements. We test our condition on paradigmatic classes of high-dimensional multipartite entangled states like imperfect GHZ states with random noise, as well as on purely randomly chosen ones and find that, in comparison with other available criteria our method provides a significant advantage and is often also simpler to evaluate.
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Project title:
Nonequilibrium quantum working fluids: dynamics and usage: P 36633 (FWF - Österr. Wissenschaftsfonds) Spatio-temporal correlations in many-body quantum systems: P 35810 (FWF - Österr. Wissenschaftsfonds) HyperSpace: 101070168 (European Commission) Vanadium in silicon carbide electronic and photonic enhancement structures for qudit quantum computing: FO999921415 (FFG - Österr. Forschungsförderungs- gesellschaft mbH) MUlti State logic In cluster state Quantum computing: 914030 (FFG - Österr. Forschungsförderungs- gesellschaft mbH)