TOTU’s sharpest, most quantitative claims are infrared geometric constraints. The highest-leverage tests therefore target those constraints first. Broader dynamical and cosmological claims are testable later or at lower precision.
1. Highest-priority: Proton radius and the geometric mass-ratio relation
Prediction
and the linked relation
Current and near-term experiments
- Muonic-hydrogen Lamb-shift spectroscopy (already decisive in the 2010s; further runs and re-analyses continue).
- Electronic hydrogen spectroscopy (1S–2S, 2S–nP, etc.) at the highest precision.
- Electron–proton scattering form-factor measurements at low (Jefferson Lab, future Mainz/MESA, and possible new low-energy facilities).
- Combined CODATA-style adjustments that incorporate all three methods.
Any sustained experimental consensus that settles on a value statistically incompatible with 0.841 fm (after all corrections) would falsify the geometric radius claim. Continued agreement at the current level strengthens it.
2. Precision QED and fundamental-constant consistency
Because the mass-ratio relation ties , , and together, improved determinations of the Rydberg constant, , and the electron mass can test internal consistency. Ongoing work at NIST, LKB, Max-Planck-Institut fΓΌr Quantenoptik, and related laboratories supplies continuous pressure on these relations.
3. Vacuum structure and lattice-response signatures (medium term)
TOTU treats inertia and gravity as collective elastic responses of a coherent vacuum lattice. Possible experimental windows:
- Precision equivalence-principle and inverse-square-law tests at short and intermediate ranges (torsion balances, atom interferometry, satellite tests such as MICROSCOPE follow-ons).
- High-precision measurements of the gravitational constant and searches for composition-dependent or environment-dependent anomalies.
- Laboratory searches for anomalous vacuum or Casimir-type forces that might reveal a finite, structured vacuum energy density rather than a purely renormalized zero-point field.
These are harder and currently less decisive, but they directly probe the lattice-response claim.
4. Astrophysical and galactic-scale tests
- Fermi / eROSITA bubble analogues in other galaxies and continued multi-wavelength mapping of the Milky Way bubbles. Persistent bipolar, nuclear-centered structures with clear convergent–divergent morphology are compatible with the black-hole / white-hole balance motif; detailed energetics and duty cycles can constrain how often and how coherently such pairs operate.
- Early-universe black-hole-star / Little Red Dot populations (JWST and future IR/X-ray missions). Lifetime, envelope properties, and transition to unobscured AGN test the transient, envelope-dominated regime of the same dynamical balance.
5. Cosmological and spectral tests (longer horizon)
Earlier TOTU threads linked proton-scale geometry to CMB features via -scaled wavelengths and collective resonances.
- Next-generation CMB experiments (Simons Observatory, CMB-S4, LiteBIRD, etc.) that improve measurements of the damping tail, low-level spectral distortions, or anomalies in the power spectrum can confront those extrapolations.
- Precision large-scale-structure and 21-cm observations may eventually test whether vacuum or lattice coherence leaves residual signatures on very large scales.
6. What would count as strong verification or falsification
Practical ranking for the next decade
- Proton-radius and hydrogen-spectroscopy campaigns (highest immediate leverage).
- Continued CODATA-style fundamental-constant consistency checks.
- Precision short-range gravity and equivalence-principle experiments.
- Multi-wavelength galactic-outflow and high-redshift black-hole-star studies.
- Next-generation CMB and large-scale-structure surveys.
The geometric proton radius and the linked mass-ratio relation remain the cleanest, most falsifiable predictions. Everything else in TOTU stands or falls more slowly and with greater theoretical latitude.