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Quantum Foundations and Particle Physics in the Universal Model Framework From Distinction Logic to Gauge Symmetries: Prime-Indexed Information Geometry as the Root of Physical Law

2025/11/26 by Gericke, Marco · 1 voice
Mathematics · Physics and Astronomy · #Advanced Mathematical Theories and Applications #Algebraic and Geometric Analysis #Quantum and Classical Electrodynamics

paper · doi:10.5281/zenodo.17727576

openalex publication_date 2025/11/26 · openalex created_date 2025/11/28 · openalex updated_date 2026/07/01

Abstract

This paper provides a comprehensive formulation of quantum mechanics and the Standard Model of particle physics within the Universal Model Framework (UMF), where spacetime and matter emerge from a prime-indexed fractal information geometry. We construct prime-indexed Hilbert spaces HπH_\piHπ and show that the discrete prime Laplacian yields the Schrödinger equation via a lattice action principle. Measurement theory follows from orthomodular prime-projector lattices, reproducing the Born rule through a Gleason-type theorem adapted to the prime substrate. We derive enhanced entanglement scaling, Sπ(L)∼ln⁡(πL)ln⁡LSπ(L)∼√(ln(π L))ln LSπ(L)∼ln(πL)lnL, reflecting multipartite connectivity on the prime lattice. A Lindblad treatment of stochastic phase diffusion predicts decoherence behavior in agreement with trapped-ion and NV-center experiments (within 5–10%). Prime residues modulo 6 give rise to the Standard Model gauge group, Yukawa couplings, Higgs vacuum structure, and anomaly cancellation conditions. LHC Run-2/3 data leave several predicted prime-harmonic scalar resonances (54, 200, 690 GeV) unexcluded. The UMF reproduces 16 fundamental constants with >85% exact or excellent agreement. This work positions prime arithmetic as a viable generative substrate for quantum theory, gauge symmetry, and particle mass spectra. This project was developed by Marco Gericke, with structured assistance from a large language model. All scientific concepts and conclusions were generated, verified, and interpreted by the author. Dedicated to Peter Plichta, who envisioned the code before it could be computed.

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