Sending absolutely maximally entangled states through noisy quantum channels

Fuente: arXiv
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Main Authors: Stawska, Maria, Wójcik, Jan, Grudka, Andrzej, Wójcik, Antoni
Format: Preprint
Published: 2025
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author Stawska, Maria
Wójcik, Jan
Grudka, Andrzej
Wójcik, Antoni
author_facet Stawska, Maria
Wójcik, Jan
Grudka, Andrzej
Wójcik, Antoni
contents Absolutely maximally entangled states are quantum states that exhibit maximal entanglement across any bipartition, making them valuable for applications. This study investigates the behavior of qubit AME states under the influence of noisy quantum channels. Our results demonstrate that for certain channels, such as the depolarizing channel, the entanglement properties remain invariant under local unitary transformations and are independent of the choice of qubits in each subset. However, for channels like the dephasing channel, the entanglement behavior can vary depending on the specific AME state and the choice of qubits, revealing a symmetry-breaking effect. These findings highlight the nuanced relationship between AME states and noise, providing insights into their robustness and potential applications in noisy quantum systems.
format Preprint
id arxiv_https___arxiv_org_abs_2505_06755
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Sending absolutely maximally entangled states through noisy quantum channels
Stawska, Maria
Wójcik, Jan
Grudka, Andrzej
Wójcik, Antoni
Quantum Physics
Absolutely maximally entangled states are quantum states that exhibit maximal entanglement across any bipartition, making them valuable for applications. This study investigates the behavior of qubit AME states under the influence of noisy quantum channels. Our results demonstrate that for certain channels, such as the depolarizing channel, the entanglement properties remain invariant under local unitary transformations and are independent of the choice of qubits in each subset. However, for channels like the dephasing channel, the entanglement behavior can vary depending on the specific AME state and the choice of qubits, revealing a symmetry-breaking effect. These findings highlight the nuanced relationship between AME states and noise, providing insights into their robustness and potential applications in noisy quantum systems.
title Sending absolutely maximally entangled states through noisy quantum channels
topic Quantum Physics
url https://arxiv.org/abs/2505.06755