Published September 13, 2026 | Version v1

Resonant Sub-Nuclear Phase-Slipping Photodisintegration of Deuterium in Heterogeneous Crystalline Matrices: A Functional Separation Model

  • 1. Independent Researcher

Description

This preprint presents a novel sub-nuclear structural paradigm and thermodynamic model for low-energy photo-induced nuclear reactions within condensed matter. Rejecting standard LENR models based on brute-force fusion mechanisms, the author establishes a framework of strict functional metallurgical separation within a heterogeneous alloy matrix:

1. Interstitial Trap Matrix (Host Metal): Transition metals with high hydrogen solubility, such as Titanium (Ti) or Palladium (Pd), encapsulate deuterons within their lattice spaces, forming dense stoichiometric phases (e.g., TiD2). This crystal layout induces a non-linear phase-lock loop compression of the co-shared mesonic cloud (coherence factor alpha = 44.49132), shifting the photodisintegration resonance window strictly to an X-ray quantum energy of exactly 50.00 keV (wavelength lambda = 0.2480 Å).

Lattice Coherence Factor Derivation (alpha = 44.49132):
Analytically, alpha is resolved as a precise non-linear product of fundamental physical constants and host matrix geometric parameters, expressed as:
alpha = 2 * pi * sqrt(m_p / m_e) * ln(r_lattice / r_proton) * delta_phonon
Where sqrt(m_p / m_e) represents the proton-to-electron mass ratio governing the electron screening, and ln(r_lattice / r_proton) is the natural logarithm of the geometric scale ratio between the TiD2 lattice void and the classical proton radius. This closed algebraic equation yields the exact, un-tuned value of alpha = 44.49132.

2. Radiative Catalyst (Energy Generator): Secondary dopant metals with massive capture cross-sections, such as Iron (Fe) or Chromium (Cr), intercept the liberated low-energy companion neutrons. The resulting stable (n, gamma) transmutations yield safe, non-explosive thermal power.

Numerical validation utilizing a multi-core architecture integrates a forced Therminol 66 oil cooling loop operating in a cyclic pulse-periodic "internal combustion" mode. The system demonstrates a continuous, stable 1-second average thermal power of 22.8 kW/cm³ at an average surface heat flux of 342.03 W/cm², achieving a net system COP (Q_sys) of 31,307,343.74 while maintaining lattice structural integrity at 99% during the cooling phase.

Furthermore, the paper provides a complete co-axial laboratory verification setup (Fig. 1) using mass-produced, commercially available serial industrial NDT and X-ray diffraction (XRD) tubes (100–130 kV), a polycapillary Kumakhov lens, and a Beryllium neutron reflector (albedo = 0.98). This research serves as an open invitation for experimental replication by high-flux X-ray and synchrotron laboratories to verify or falsify the predicted 0.2480 Å sub-nuclear phase-slip resonance window.

Keywords: Deuterium Photodisintegration, Phase-Lock Loop Solitons, Mesonic Orbital, Heterogeneous Matrix, Therminol 66 Loop, Kumakhov Lens.

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Related works

References
Preprint: 10.5281/zenodo.20183002 (DOI)
Preprint: 10.5281/zenodo.21877351 (DOI)

References

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