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

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
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preprint

Thermodynamic Quantum Breathing (TQB) Model and Proposals for Direct and Indirect Verification

Luca Pinter
Zenodo (CERN European Organization for Nuclear Research)
Atomic and Subatomic Physics Research
preprint

Thermodynamic Quantum Breathing (TQB) Model and Proposals for Direct and Indirect Verification

Luca Pinter
preprint en

Abstract

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.

Zenodo (CERN European Organization for Nuclear Research)
Atomic and Subatomic Physics Research
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