Quantum walks and entanglement in cavity networks

Fuente: arXiv
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Autori principali: Di Fidio, Christian, Ares, Laura, Sperling, Jan
Natura: Preprint
Pubblicazione: 2024
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author Di Fidio, Christian
Ares, Laura
Sperling, Jan
author_facet Di Fidio, Christian
Ares, Laura
Sperling, Jan
contents For harnessing the full potential of quantum phenomena, light-matter interfaces and complexly connected quantum networks are required, relying on the joint quantum operation of different physical platforms. In this work, we analyze the quantum properties of multipartite quantum systems, consisting of an arbitrarily large collection of optical cavities with two-level atoms. In particular, we explore quantum walks in such systems and determine the resulting entanglement. Realistic imperfections are included in the model as optical losses and spontaneous decays of atoms. The topology of torus and the non-orientable Möbius strip serve as examples of complex networks we consider, demonstrating the versatility of our approach and resulting in interesting quantum dynamics and interference effects for quantum simulation applications.
format Preprint
id arxiv_https___arxiv_org_abs_2404_11331
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum walks and entanglement in cavity networks
Di Fidio, Christian
Ares, Laura
Sperling, Jan
Quantum Physics
For harnessing the full potential of quantum phenomena, light-matter interfaces and complexly connected quantum networks are required, relying on the joint quantum operation of different physical platforms. In this work, we analyze the quantum properties of multipartite quantum systems, consisting of an arbitrarily large collection of optical cavities with two-level atoms. In particular, we explore quantum walks in such systems and determine the resulting entanglement. Realistic imperfections are included in the model as optical losses and spontaneous decays of atoms. The topology of torus and the non-orientable Möbius strip serve as examples of complex networks we consider, demonstrating the versatility of our approach and resulting in interesting quantum dynamics and interference effects for quantum simulation applications.
title Quantum walks and entanglement in cavity networks
topic Quantum Physics
url https://arxiv.org/abs/2404.11331