The Topological Atom: Orbital Stability and Subatomic Determinism in the DQ Framework

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Main Authors: VARCO, VILMA, ESPINOSA, JUAN
Format: Recurso digital
Language:English
Published: Zenodo 2026
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author VARCO, VILMA
ESPINOSA, JUAN
author_facet VARCO, VILMA
ESPINOSA, JUAN
contents <p><span lang="ES">This paper presents the "Topological Atom" model based on the Quantum Diffusion (QD) Framework, resolving the long-standing paradox of electron orbital stability. While orthodox quantum mechanics resorts to ad-hoc mathematical postulates (non-radiative orbits and probability clouds) to avoid the collapse predicted by classical electrodynamics, the QD Framework provides a causal and deterministic mechanism. It postulates that the atomic nucleus acts as a hyperdensity knot in the 12-dimensional subspace, generating an extreme gradient of local diffusivity ( </span><span lang="EN"></span><span lang="ES">). According to the relation </span><span lang="EN"></span><span lang="ES">, Planck's constant is stratified around the nucleus. Electrons, defined as stable tensor perturbations, do not orbit kinetically, but rather occupy "topological resonance valleys" (constant friction isoclines) where their wavelength perfectly matches the local spatial granularity. This approach mechanically explains the absence of orbital radiation, defines the quantum leap as the forced crossing of topological gradients, and replaces probabilistic uncertainty with strict geometric determinism.</span></p>
format Recurso digital
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institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle The Topological Atom: Orbital Stability and Subatomic Determinism in the DQ Framework
VARCO, VILMA
ESPINOSA, JUAN
Topological Atom
Quantum Mechanics
Electron Stability
Quantum Leap
Quantum Diffusion
Topological Determinism
Unified Field Theory
<p><span lang="ES">This paper presents the "Topological Atom" model based on the Quantum Diffusion (QD) Framework, resolving the long-standing paradox of electron orbital stability. While orthodox quantum mechanics resorts to ad-hoc mathematical postulates (non-radiative orbits and probability clouds) to avoid the collapse predicted by classical electrodynamics, the QD Framework provides a causal and deterministic mechanism. It postulates that the atomic nucleus acts as a hyperdensity knot in the 12-dimensional subspace, generating an extreme gradient of local diffusivity ( </span><span lang="EN"></span><span lang="ES">). According to the relation </span><span lang="EN"></span><span lang="ES">, Planck's constant is stratified around the nucleus. Electrons, defined as stable tensor perturbations, do not orbit kinetically, but rather occupy "topological resonance valleys" (constant friction isoclines) where their wavelength perfectly matches the local spatial granularity. This approach mechanically explains the absence of orbital radiation, defines the quantum leap as the forced crossing of topological gradients, and replaces probabilistic uncertainty with strict geometric determinism.</span></p>
title The Topological Atom: Orbital Stability and Subatomic Determinism in the DQ Framework
topic Topological Atom
Quantum Mechanics
Electron Stability
Quantum Leap
Quantum Diffusion
Topological Determinism
Unified Field Theory
url https://doi.org/10.5281/zenodo.18763777