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April 14, 20260 citationsOpen Access

A Structural Interpretation of the Electron in Terms of Coherence and Resonance

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HNHenrik Nilsson

Key Points

  • The aim is to present a structural interpretation of the electron, deriving its properties from coherence rather than postulates.
  • Presented a model describing the electron as a resonance configuration within a coherence field framework.
  • Explored the relationship between coherence, charge, and spin regarding electron properties.
  • Interpreted observable electron behaviors through structural features, including delocalization and tunneling.
  • Demonstrated that charge arises from lateral coherence asymmetry and spin is a phase-topological property.
  • Described electron interactions using coherence interference, providing insights into repulsion and pairing behaviors.
  • Presented electromagnetic phenomena as coherence dynamics with a unified description of interactions.

Abstract

This work presents a structural interpretation of the electron in which its fundamental properties—charge, spin, and interaction—are derived from coherence structure rather than introduced as intrinsic postulates. The electron is described as a stable resonance configuration within a coherence-based field framework, allowing a unified physical interpretation of electromagnetic interaction, electron correlation, and atomic structure. A key aspect of the model is that the electron is not fully confined to three-dimensional space, but extends along an internal coherence dimension. Observable behavior is interpreted as a projection of this deeper structure, providing a structural basis for delocalization, tunneling, and orbital formation. Within this framework, charge arises from asymmetry in lateral coherence, while spin is understood as an internal phase-topological property. Electron–electron interaction is described in terms of coherence interference, offering a structural explanation for repulsion, pairing, and exclusion behavior. Electromagnetic phenomena are interpreted as coherence dynamics: fields correspond to continuous structure, while photons are treated as localized propagating excitations. This provides a unified but differentiated description of electromagnetic interaction. The framework is consistent with established theoretical descriptions while providing a physically interpretable basis for electron structure and its role in electromagnetism and atomic systems. It aims to clarify conceptual foundations rather than replace existing predictive models, and establishes a basis for further work in atomic structure and chemical behavior.

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Cite This Study

Henrik Nilsson (2026) studied this question.

synapsesocial.com/papers/69ddd9e1e195c95cdefd756ehttps://doi.org/10.5281/zenodo.19537316
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