Nonseparability as Time-Averaged Dynamic States

Fuente: arXiv
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Main Authors: Padlewski, Mathieu, Tuuva, Tim, Apffel, Benjamin, Lissek, Hervé, Fleury, Romain
Format: Preprint
Published: 2026
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author Padlewski, Mathieu
Tuuva, Tim
Apffel, Benjamin
Lissek, Hervé
Fleury, Romain
author_facet Padlewski, Mathieu
Tuuva, Tim
Apffel, Benjamin
Lissek, Hervé
Fleury, Romain
contents Nonseparability - multipartite states that cannot be factorized - is one of the most striking features of quantum mechanics, as it gives rise to entanglement and non-causal correlations. In quantum computing, it also contributes directly to the computational advantage of quantum computers over its digital counterparts. In this work, we introduce a simple mechanism that frames nonseparability as a time-averaged manifestation of an underlying oscillatory process within state space. The central idea is the inclusion of auxiliary angular frequencies that modulate the temporal evolution of composite states. These additional dynamical degrees of freedom act as coherence channels through which nonseparability is mediated. While the proposed formalism could eventually serve as an alternative theoretical handle on the mechanisms of quantum entanglement, its greater significance lies in opening practical routes for simulating multipartite entanglement in controlled classical wave systems.
format Preprint
id arxiv_https___arxiv_org_abs_2601_02977
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Nonseparability as Time-Averaged Dynamic States
Padlewski, Mathieu
Tuuva, Tim
Apffel, Benjamin
Lissek, Hervé
Fleury, Romain
Quantum Physics
Applied Physics
Nonseparability - multipartite states that cannot be factorized - is one of the most striking features of quantum mechanics, as it gives rise to entanglement and non-causal correlations. In quantum computing, it also contributes directly to the computational advantage of quantum computers over its digital counterparts. In this work, we introduce a simple mechanism that frames nonseparability as a time-averaged manifestation of an underlying oscillatory process within state space. The central idea is the inclusion of auxiliary angular frequencies that modulate the temporal evolution of composite states. These additional dynamical degrees of freedom act as coherence channels through which nonseparability is mediated. While the proposed formalism could eventually serve as an alternative theoretical handle on the mechanisms of quantum entanglement, its greater significance lies in opening practical routes for simulating multipartite entanglement in controlled classical wave systems.
title Nonseparability as Time-Averaged Dynamic States
topic Quantum Physics
Applied Physics
url https://arxiv.org/abs/2601.02977