Toward a unified theory - cosmic memory, scalar field and quantum origin of spin

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Main Author: Bensalah, Thoria
Format: Recurso digital
Language:French
Published: Zenodo 2025
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author Bensalah, Thoria
author_facet Bensalah, Thoria
contents <p>This third article extends the theoretical framework developed in two previous works, where the concept of <em>gravitational memory</em> was introduced through a cosmological scalar field phi<span><span>(t)</span></span>. We now generalize this scalar field to a local, dynamic form phi<span><span>(x,t)</span></span>, which acts as a memory field encoding both large-scale cosmic evolution and the emergence of quantum properties.</p> <p>We propose that fundamental physical features—such as spin, mass, charge, and localization—can be interpreted as geometric or topological manifestations of this field. Stable configurations of phi<span><span>(x,t)</span></span> correspond to quantum particles, while planetary systems emerge as large-scale nodes in the global memory flow.</p> <p>The model offers a unified description linking gravitational structures, quantum phenomena, and information dynamics, all governed by the same scalar field. It suggests testable predictions in cosmology (e.g. CMB anisotropies, Hubble tension, dark matter alternatives) and particle physics (e.g. solitonic excitations, effective mass generation). The framework paves the way for a geometric unification of gauge symmetries and gravity through memory-based dynamics.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_16087552
institution Zenodo
language fra
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Toward a unified theory - cosmic memory, scalar field and quantum origin of spin
Bensalah, Thoria
Gravitational memory
Scalar field
Physical cosmology
Quantum physics
Black holes
Modified gravity
Information Theory
Dark energy
Dark matter
Entropy
Cosmic acceleration
<p>This third article extends the theoretical framework developed in two previous works, where the concept of <em>gravitational memory</em> was introduced through a cosmological scalar field phi<span><span>(t)</span></span>. We now generalize this scalar field to a local, dynamic form phi<span><span>(x,t)</span></span>, which acts as a memory field encoding both large-scale cosmic evolution and the emergence of quantum properties.</p> <p>We propose that fundamental physical features—such as spin, mass, charge, and localization—can be interpreted as geometric or topological manifestations of this field. Stable configurations of phi<span><span>(x,t)</span></span> correspond to quantum particles, while planetary systems emerge as large-scale nodes in the global memory flow.</p> <p>The model offers a unified description linking gravitational structures, quantum phenomena, and information dynamics, all governed by the same scalar field. It suggests testable predictions in cosmology (e.g. CMB anisotropies, Hubble tension, dark matter alternatives) and particle physics (e.g. solitonic excitations, effective mass generation). The framework paves the way for a geometric unification of gauge symmetries and gravity through memory-based dynamics.</p>
title Toward a unified theory - cosmic memory, scalar field and quantum origin of spin
topic Gravitational memory
Scalar field
Physical cosmology
Quantum physics
Black holes
Modified gravity
Information Theory
Dark energy
Dark matter
Entropy
Cosmic acceleration
url https://doi.org/10.5281/zenodo.16087552