Thermodynamic Quantum Breathing (TQB) Model and Proposals for Direct and Indirect Verification
This paper establishes a rigorous laboratory protocol for the experimental verification of the Thermodynamic Quantum Breathing (TQB) model and its underlying phase-transition assumptions. The verification apparatus is designed to test the existence of the coherent superfluid phase (ON*) and its proposed capability to modify macroscopic mass anchoring friction and gravitational absorption. A dynamic nuclear polarization (DNP) and Overhauser cross-effect framework is presented, utilizing an ultra-high-field superconducting magnet (>10 Tesla) coupled with a high-power 397 GHz microwave gyrotron source to force a stable, non-equilibrium population inversion (ON* > 60%) within cryogenic targets of pure Copper-63 and Helium-3 below the millikelvin threshold. According to the model, this coherent spin state creates a local frustration of the universal 20c graviton resonance. The paper describes an ultra-high-vacuum (10⁻⁹ torr) torsion microbalance setup designed to test the resulting predicted anomalous macroscopic mass-shielding effect. A secondary validation method is also outlined, based on monitoring the spontaneous radioactivity of low-Q-value beta emitters under intense Zeeman splitting. The proposed experiment tests whether hyperpolarizing Rhenium-187 (Q = 2.47 keV, spin 5/2) under coordinated RF pulsing reduces its gravitational absorption cross-section (σR), yielding a statistically significant and measurable deceleration in its half-life decay constant (λ). Potential experimental artifacts, including diamagnetic core interactions, convective vacuum currents, and RF thermal biasing, are also considered.
Authors
- Luca Pinter
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-30
- DOI
- https://doi.org/10.5281/zenodo.23063651
- Primary Topic
- Atomic and Subatomic Physics Research
- Type
- preprint