Synthesis of QED Vacuum Breakdown and Superheavy Element Predictions: Overcoming Experimental Limits in Deep Inelastic Collisions via Kinematic Coincidence Filtering

The exploration of the superheavy element (SHE) regime (Z ≥ 119) and the probing of Quantum Electrodynamic (QED) vacuum breakdown (Z ≥ 173) represent the most stringent tests of relativistic quantum mechanics and nuclear many-body theory. This paper systematically integrates the Dirac-Coulomb-Breit framework for SHE prediction with the dynamics of giant quasi-molecules formed during Deep Inelastic Collisions (DIC), enhanced by the Seonggil Theory of Complex Torsion (STCT). We critically analyze the experimental failures of historical uranium-uranium collisions (e.g., GSI EPOS/ORANGE), specificallyaddressing the fatal 10^(−21) s sticking time limit and dynamic background noise. To overcome these barriers, we propose a novel Hybrid Kinematic Coincidence Filtering methodology utilizing Time-Dependent Hartree-Fock (TDHF) coupled with Bayesian neural networks. Furthermore, precise physical and chemical extrapolations for elements Z = 119 to 125 are presented, validated by an embedded computational Python simulation predicting atomic properties and sticking-time distributions within a topological spacetime manifold.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-21
DOI
https://doi.org/10.5281/zenodo.22868322
Primary Topic
Nuclear physics research studies
Type
preprint
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preprint

Synthesis of QED Vacuum Breakdown and Superheavy Element Predictions: Overcoming Experimental Limits in Deep Inelastic Collisions via Kinematic Coincidence Filtering

Seonggil Lee
Zenodo (CERN European Organization for Nuclear Research)
Nuclear physics research studies
preprint

Synthesis of QED Vacuum Breakdown and Superheavy Element Predictions: Overcoming Experimental Limits in Deep Inelastic Collisions via Kinematic Coincidence Filtering

Seonggil Lee
preprint en

Abstract

The exploration of the superheavy element (SHE) regime (Z ≥ 119) and the probing of Quantum Electrodynamic (QED) vacuum breakdown (Z ≥ 173) represent the most stringent tests of relativistic quantum mechanics and nuclear many-body theory. This paper systematically integrates the Dirac-Coulomb-Breit framework for SHE prediction with the dynamics of giant quasi-molecules formed during Deep Inelastic Collisions (DIC), enhanced by the Seonggil Theory of Complex Torsion (STCT). We critically analyze the experimental failures of historical uranium-uranium collisions (e.g., GSI EPOS/ORANGE), specificallyaddressing the fatal 10^(−21) s sticking time limit and dynamic background noise. To overcome these barriers, we propose a novel Hybrid Kinematic Coincidence Filtering methodology utilizing Time-Dependent Hartree-Fock (TDHF) coupled with Bayesian neural networks. Furthermore, precise physical and chemical extrapolations for elements Z = 119 to 125 are presented, validated by an embedded computational Python simulation predicting atomic properties and sticking-time distributions within a topological spacetime manifold.

Zenodo (CERN European Organization for Nuclear Research)
Nuclear physics research studies
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Synthesis of QED Vacuum Breakdown and Superheavy Element Predictions: Overcoming Experimental Limits in Deep Inelastic Collisions via Kinematic Coincidence Filtering — Seonggil Lee · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS