Internal resonance and coherence properties of nucleons.

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Bibliographic Details
Title: Internal resonance and coherence properties of nucleons.
Authors: Pettersen, Bent R.1 bentrp@protonmail.com
Source: Physics Essays. Mar2026, Vol. 39 Issue 1, p13-19. 7p.
Subjects: Resonance, Quarks, Particles (Nuclear physics), Nuclear physics, Energy levels (Quantum mechanics), Quantum coherence
Abstract (English): This paper presents a theoretical model where quarks can exist at different energy levels that influence the internal resonance and coherence properties of nucleons. The model suggests that subtle resonance-based modulations at the subnucleonic level can give rise to atomic property variability beyond traditional isotope classification. These variations are not attributed to changes in quark flavor or mass but to differences in internal field coherence, dielectric response, and unifying-resonance coupling. Experimental implications include isotope anomalies, nuclear decay asymmetries, and subtle shifts in spectral or magnetic profiles. [ABSTRACT FROM AUTHOR]
Abstract (French): Cet article présente un modèle théorique dans lequel les quarks peuvent exister à différents niveaux d'énergie, influençant la résonance interne et les propriétés de cohérence des nucléons. Le modèle propose que de subtiles modulations résonantes au niveau subnucléonique puissent engendrer des variations des propriétés atomiques dépassant la classification traditionnelle des isotopes. Ces variations ne sont pas attribuées à des changements de saveur ou de masse des quarks, mais à des différences dans la cohérence des champs internes, la réponse diélectrique et le couplage par résonance unificatrice (UR). Les implications expérimentales incluent des anomalies isotopiques, des asymétries dans les processus de désintégration nucléaire, ainsi que des variations subtiles dans les profils spectraux ou magnétiques. [ABSTRACT FROM AUTHOR]
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Database: Engineering Source
Description
Abstract:This paper presents a theoretical model where quarks can exist at different energy levels that influence the internal resonance and coherence properties of nucleons. The model suggests that subtle resonance-based modulations at the subnucleonic level can give rise to atomic property variability beyond traditional isotope classification. These variations are not attributed to changes in quark flavor or mass but to differences in internal field coherence, dielectric response, and unifying-resonance coupling. Experimental implications include isotope anomalies, nuclear decay asymmetries, and subtle shifts in spectral or magnetic profiles. [ABSTRACT FROM AUTHOR]
ISSN:08361398
DOI:10.4006/0836-1398-39.1.013