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.
Authors
- Seonggil Lee
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-21
- DOI
- https://doi.org/10.5281/zenodo.22868323
- Primary Topic
- Nuclear physics research studies
- Type
- preprint