Entanglement distribution modeling with quantum memories in a global and local clock system

Fuente: arXiv
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Main Authors: Ahmed, Tasmi R., Nada, Fares, Hussain, Amber, Kupchak, Connor
Format: Preprint
Published: 2025
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author Ahmed, Tasmi R.
Nada, Fares
Hussain, Amber
Kupchak, Connor
author_facet Ahmed, Tasmi R.
Nada, Fares
Hussain, Amber
Kupchak, Connor
contents We report an innovative model for predicting entanglement distribution between end parties of a quantum network using our in-house simulation algorithm. Our implementation is based on stochastic methods that are built upon a unique global and local clock system for monitoring expectations with finite quantum memory (QM) parameters. This allows us to tabulate rates with independently operating quantum repeater nodes in a distribution chain. The numerical simulations presented utilize a stochastic modeling of QM efficiency and storage lifetime. The findings presented reveal the translation of the effects of QM lifetime on the spread of time needed for successful entanglement distribution between end parties. Our model based on this transformative clock scheme will make an impactful addition to quantum network simulators platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2509_08141
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Entanglement distribution modeling with quantum memories in a global and local clock system
Ahmed, Tasmi R.
Nada, Fares
Hussain, Amber
Kupchak, Connor
Quantum Physics
We report an innovative model for predicting entanglement distribution between end parties of a quantum network using our in-house simulation algorithm. Our implementation is based on stochastic methods that are built upon a unique global and local clock system for monitoring expectations with finite quantum memory (QM) parameters. This allows us to tabulate rates with independently operating quantum repeater nodes in a distribution chain. The numerical simulations presented utilize a stochastic modeling of QM efficiency and storage lifetime. The findings presented reveal the translation of the effects of QM lifetime on the spread of time needed for successful entanglement distribution between end parties. Our model based on this transformative clock scheme will make an impactful addition to quantum network simulators platforms.
title Entanglement distribution modeling with quantum memories in a global and local clock system
topic Quantum Physics
url https://arxiv.org/abs/2509.08141