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2025
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| Online Access: | https://doi.org/10.5281/zenodo.16877698 |
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| author | Morató de Dalmases, Luis |
| author_facet | Morató de Dalmases, Luis |
| contents | <p><strong>"Theory of Time: Unified Topological–Quantum Framework for Photon, Antimatter, Eonion, and DEQ Confinement"</strong></p> <p><strong><strong>Author:</strong><br>Luis Morató de Dalmases</strong></p> <p><strong>Files:</strong></p> <p>1. Annex F — Initial Experimental Validation.pdf</p> <p>2. Annex G — Stability and Noise Analysis.pdf</p> <p>3. Annex H — Derived Applications.pdf</p> <p>4. Annex I — Integrated Experimental Validation for S3.pdf</p> <p>5. Annex J — Scalability and Industrial Integration.pdf</p> <p>6. Annex K — Unified Theoretical Model with Error.pdf</p> <p><strong>Summary:</strong><br>This collection presents an integrated framework within the Theory of Time (LT) that unites topology, quantum dynamics, and experimental protocols to describe the confinement and interaction of photons (including phase-shifted photons), antimatter, eonions, and Dark Energy Quasiparticles (DEQ).</p> <p>At its core lies a <strong>Correspondence Theorem</strong> mapping:<br><strong>Topology → LT Triplet (δϕ_BCH, Φ□, δv) → Hamiltonian → Q-Factor → Experimental Tolerances.</strong></p> <p><strong>Key Contributions:</strong></p> <ul> <li> <p><strong>Topological Configurations</strong>: Detailed derivations for Möbius, toroidal, helicoidal, Hopf knot, Conway knot, multi-layer cavity, and discrete DEQ lattice confinement—each linked to its measurable LT triplet and Hamiltonian.</p> </li> <li> <p><strong>Antimatter Definition</strong>: Described as non-collapsing prime-coded vibrations, enabling a natural mapping to S³ geometries.</p> </li> <li> <p><strong>Photon–Antimatter–Eonion–DEQ Interactions</strong>: Phase-shifted photons in S³ interact with antimatter states through eonions (topological temporal excitations) and DEQ fields, providing mechanisms for stable energy–information storage and transfer.</p> </li> <li> <p><strong>Unified Hamiltonian Models</strong>: Complete LT Hamiltonians for plasma, optical, and relativistic particle systems, scaled with physical constants.</p> </li> <li> <p><strong>Experimental Protocols</strong>: Tolerance tables, Q-factor thresholds, stability and noise analysis, and validation procedures.</p> </li> <li> <p><strong>Scalability & Applications</strong>: From quantum communication to dark matter modelling, energy conversion systems, and topological quantum computing.</p> </li> </ul> <p><strong>Impact:</strong><br>This unified approach offers a mathematically rigorous and experimentally grounded pathway toward controlling the topology of space-time for practical technologies in navigation, energy, and fundamental physics.</p> <p><strong>License</strong>: Creative Commons Attribution 4.0 (CC-BY 4.0) <span lang="EN-US">(Attribution - NonCommercial - ShareAlike)</span></p> |
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| spellingShingle | Integrated Temporal‑Topological Framework: Experimental Validation, Stability and Noise Analysis, Derived Applications, Scalability and Unified Model in the Theory of Time Morató de Dalmases, Luis <p><strong>"Theory of Time: Unified Topological–Quantum Framework for Photon, Antimatter, Eonion, and DEQ Confinement"</strong></p> <p><strong><strong>Author:</strong><br>Luis Morató de Dalmases</strong></p> <p><strong>Files:</strong></p> <p>1. Annex F — Initial Experimental Validation.pdf</p> <p>2. Annex G — Stability and Noise Analysis.pdf</p> <p>3. Annex H — Derived Applications.pdf</p> <p>4. Annex I — Integrated Experimental Validation for S3.pdf</p> <p>5. Annex J — Scalability and Industrial Integration.pdf</p> <p>6. Annex K — Unified Theoretical Model with Error.pdf</p> <p><strong>Summary:</strong><br>This collection presents an integrated framework within the Theory of Time (LT) that unites topology, quantum dynamics, and experimental protocols to describe the confinement and interaction of photons (including phase-shifted photons), antimatter, eonions, and Dark Energy Quasiparticles (DEQ).</p> <p>At its core lies a <strong>Correspondence Theorem</strong> mapping:<br><strong>Topology → LT Triplet (δϕ_BCH, Φ□, δv) → Hamiltonian → Q-Factor → Experimental Tolerances.</strong></p> <p><strong>Key Contributions:</strong></p> <ul> <li> <p><strong>Topological Configurations</strong>: Detailed derivations for Möbius, toroidal, helicoidal, Hopf knot, Conway knot, multi-layer cavity, and discrete DEQ lattice confinement—each linked to its measurable LT triplet and Hamiltonian.</p> </li> <li> <p><strong>Antimatter Definition</strong>: Described as non-collapsing prime-coded vibrations, enabling a natural mapping to S³ geometries.</p> </li> <li> <p><strong>Photon–Antimatter–Eonion–DEQ Interactions</strong>: Phase-shifted photons in S³ interact with antimatter states through eonions (topological temporal excitations) and DEQ fields, providing mechanisms for stable energy–information storage and transfer.</p> </li> <li> <p><strong>Unified Hamiltonian Models</strong>: Complete LT Hamiltonians for plasma, optical, and relativistic particle systems, scaled with physical constants.</p> </li> <li> <p><strong>Experimental Protocols</strong>: Tolerance tables, Q-factor thresholds, stability and noise analysis, and validation procedures.</p> </li> <li> <p><strong>Scalability & Applications</strong>: From quantum communication to dark matter modelling, energy conversion systems, and topological quantum computing.</p> </li> </ul> <p><strong>Impact:</strong><br>This unified approach offers a mathematically rigorous and experimentally grounded pathway toward controlling the topology of space-time for practical technologies in navigation, energy, and fundamental physics.</p> <p><strong>License</strong>: Creative Commons Attribution 4.0 (CC-BY 4.0) <span lang="EN-US">(Attribution - NonCommercial - ShareAlike)</span></p> |
| title | Integrated Temporal‑Topological Framework: Experimental Validation, Stability and Noise Analysis, Derived Applications, Scalability and Unified Model in the Theory of Time |
| url | https://doi.org/10.5281/zenodo.16877698 |