Technical Treatise on Morphological Quantum Medicine and Agronomy: An Inversion of Biological Paradigms via Bioresorbable Vogel-Spiral (N=55) Nanoprostheses and Topological Phase-Matching

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Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22760082
Primary Topic
Bacteriophages and microbial interactions
Type
preprint
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preprint

Technical Treatise on Morphological Quantum Medicine and Agronomy: An Inversion of Biological Paradigms via Bioresorbable Vogel-Spiral (N=55) Nanoprostheses and Topological Phase-Matching

Yaron Admon Hefetz
Zenodo (CERN European Organization for Nuclear Research)
Bacteriophages and microbial interactions
preprint

Technical Treatise on Morphological Quantum Medicine and Agronomy: An Inversion of Biological Paradigms via Bioresorbable Vogel-Spiral (N=55) Nanoprostheses and Topological Phase-Matching

Yaron Admon Hefetz
preprint en

Abstract

This treatise introduces a non-invasive, universal quantum-biological framework designed to reverse structural macromolecular mutations and pathogens across human, veterinary, and agronomic systems through the deployment of temporary, bioresorbable inorganic nanoprostheses. Traditional quantum biology remains bottlenecked by the biological Von Neumann measurement paradox, wherein non-invasive observation of quantum coherence within warm, wet, and noisy cellular environments inevitably accelerates wave-function decoherence. We invert this methodological paradigm via "Proof by Synthesis"—proving that if an artificial, topologically protected hardware interface can drive, stabilize, and entrain endogenous structures into a state of 100% operational efficiency, the underlying biological mechanism is verified as fundamentally quantum mechanical. The core architecture utilizes an aperiodic, golden-ratio-based phyllotactic lattice (Vogel Spiral) optimized at the Fibonacci configuration of N=55 and N=987. Operating through exact diagonalization of complex tight-binding Floquet Hamiltonians, we model sub-diffusive quantum transport (α ≈ 0.551), sharp spatial localization mobility edges via Inverse Participation Ratio (IPR) analysis, and a rigid, continuous spectral flow under synthetic gauge fields. Crucially, the system utilizes an engineered 8.21% structural vacancy concentration to induce a Topological Anderson Insulator (TAI) effect and a central zero-momentum void (\(\mathbf{k}=0\)), forcing the system into an anti-fragile regime where ambient room-temperature noise (350K) expands the Floquet gap to sustain coherence. Fabricated out of a biocompatible silicon-graphene alloy via tobacco mosaic virus (TMV) biotemplating, these nanoprostheses act as localized spatial transmitters that dynamically entrain damaged substrates (such as distorted B-form DNA, misfolded prions, or viral capsids) back into native geometric configurations through isomorphic s²p² valence electron superposition and geometric anti-phase anti-resonance. For spinal or traumatic brain injury voids, the architecture operates as an injectable Topological Neural Bridge, establishing a persistent k=0 phase that enables action potentials to execute zero-latency quantum tunneling across neural gaps while guiding scar-free mitotic tissue regeneration. Following therapeutic transfer, the unpowered scaffolding undergoes controlled in vivo hydrolysis into non-toxic, excretable silicic acid, completely clearing through the urine within 72 hours. This framework is computationally verified via a super-resolution Three-Dimensional Non-Uniform Fast Fourier Transform (3D NUFFT) and an open-source 4-Laboratory Python suite, establishing a rigid baseline for high-temperature topological quantum computing and structural healing.

Zenodo (CERN European Organization for Nuclear Research)
Bacteriophages and microbial interactions
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