The Intrinsic State of Matter: Thermodynamic Decoupling and Topological Confinement via the Fractal Quantization Model (FQM)

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Autore principale: Cruz, Gilmar Bezerra da.
Natura: Recurso digital
Lingua:inglese
Pubblicazione: Zenodo 2026
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_version_ 1866902247109033984
author Cruz, Gilmar Bezerra da.
author_facet Cruz, Gilmar Bezerra da.
contents <p>This Version 2.0 expands the original 2026 preprint by incorporating advanced numerical<br>simulations (using SymPy for symbolic mathematics, NumPy for computations, and Matplotlib<br>for visualizations) and extending the Fractal Quantization Model (FQM) to new domains:<br>environmental science (carbon capture), energy storage (batteries), quantum computing (qubit<br>stability), and nanotechnology (self-assembling structures). Formulas are modified by integrating<br>the golden ratio (Φ ≈ 1.618) to enhance efficiency metrics, with complete calculations<br>demonstrating mathematical consistency. Tables compare standard vs. FQM-enhanced<br>parameters, and graphs illustrate key phenomena. While hypothetical pending experimental<br>validation, the FQM’s rigorous algebraic foundation refutes pseudoscience claims and calls for<br>laboratory tests—such as molecule synthesis and property measurements—to potentially<br>transform global challenges in sustainability, health, and technology.</p>
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spellingShingle The Intrinsic State of Matter: Thermodynamic Decoupling and Topological Confinement via the Fractal Quantization Model (FQM)
Cruz, Gilmar Bezerra da.
Intrinsic State, Thermodynamic Decoupling, Fractal Quantization, Golden Ratio, Forward Osmosis, Quantum Topology, Room-Temperature Superconductivity, Precision Medicine.
<p>This Version 2.0 expands the original 2026 preprint by incorporating advanced numerical<br>simulations (using SymPy for symbolic mathematics, NumPy for computations, and Matplotlib<br>for visualizations) and extending the Fractal Quantization Model (FQM) to new domains:<br>environmental science (carbon capture), energy storage (batteries), quantum computing (qubit<br>stability), and nanotechnology (self-assembling structures). Formulas are modified by integrating<br>the golden ratio (Φ ≈ 1.618) to enhance efficiency metrics, with complete calculations<br>demonstrating mathematical consistency. Tables compare standard vs. FQM-enhanced<br>parameters, and graphs illustrate key phenomena. While hypothetical pending experimental<br>validation, the FQM’s rigorous algebraic foundation refutes pseudoscience claims and calls for<br>laboratory tests—such as molecule synthesis and property measurements—to potentially<br>transform global challenges in sustainability, health, and technology.</p>
title The Intrinsic State of Matter: Thermodynamic Decoupling and Topological Confinement via the Fractal Quantization Model (FQM)
topic Intrinsic State, Thermodynamic Decoupling, Fractal Quantization, Golden Ratio, Forward Osmosis, Quantum Topology, Room-Temperature Superconductivity, Precision Medicine.
url https://doi.org/10.5281/zenodo.18703284