Dynamical Origin of GUE Level Repulsion, Fock-Space Entanglement Transitions, and Critical Boundary Decoupling in Prime Phase Networks
Extending the empirical prime phase interference spectroscopy of Riemann zeros, this work establishes the dynamical mechanisms governing spectral rigidity, quantum many-body coherence, and algebraic decoupling along the critical boundary Re(s)=1/2. By unfolding the nearest-neighbor spacings across the first 200 consecutive zeros (t1 ≈ 14.1347 to t200 ≈ 396.3819), we extract an empirical Brody parameter of β = 1.76, confirming that Gaussian Unitary Ensemble (GUE) level repulsion dynamically emerges from a logarithmic Coulomb repulsion barrier, V_eff(s) ~ -2 ln s, driven by rapid pairwise prime dephasing (Δt_cycle ~ π / ln q). In the many-body sector, while spatial lattice states remain confined within the infrared base primes (p <= 7 accounting for 94.94% of ground-state occupation), entering critical zero resonances triggers an autonomous +21.6% surge in multi-particle Fock-space entanglement entropy (S_Fock = 1.0507 ± 0.1729 versus 0.8638 ± 0.2452 at off-resonance midpoints; Welch's t-test p < 10^-15). This enables autonomous zero-trapping directly from phase fluctuations without prior functional evaluations. Furthermore, an exhaustive survey across 200 consecutive zeros and 100 prime oscillators confirms zero algebraic bound violations, demonstrating that multi-particle coupling magnitudes decay exponentially (ln|S_k| ∝ -1.4127 k) with interaction orders k <= 5 universally saturating 99.8802% ± 0.1459% of the total interaction energy. Crucially, off-critical counterfactual scans (σ != 1/2) reveal that any displacement into the sub-critical half-plane (σ < 1/2) catastrophically destroys this 5-body saturation ceiling (dropping to 20% ~ 76%). This indicates that algebraic decoupling acts as an empirical physical stability condition strictly tethered to the critical line.
Authors
- A Citizen of the Republic of Korea (ORCID: https://orcid.org/0009-0004-3627-6997)
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-17
- DOI
- https://doi.org/10.5281/zenodo.22804010
- Primary Topic
- Quantum many-body systems
- Type
- preprint