Submitted:
22 January 2026
Posted:
23 January 2026
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Abstract
Keywords:
1. Introduction
- (M1)
- Spherical horizon geometry: the late-time cosmological horizon is treated as with , valid when .
- (M2)
- Isotropic (monopole) extraction: the computed quantity is the angular mean of the loading functional, for which is exact by orthogonality.
- (M3)
- Local self-adjoint boundary conditions: fermions satisfy MIT bag conditions, the minimal local class ensuring self-adjointness and vanishing normal flux.
- (M4)
- Regulated collar interpolation: greybody factors are computed via smooth metric transition across a collar of width ; results are validated to be -insensitive.
2. Setup: Spherical Horizon and Spectral Content
2.1. Thermal Scale
2.2. SO(3) Block Diagonalization
2.3. Monopole Projectors by Spin
2.4. KMS Thermal Weighting
2.5. Standard Model Degrees of Freedom
- (i)
- Bosons: Photon (2), gluons (16 = ), (9 = ), Higgs (1)
- (ii)
- Quarks: 6 flavors × 3 colors × 2 spin states = 36
- (iii)
- Leptons: 3 charged leptons × 2 spin + neutrino modes
2.6. Neutrino Type Dependence
| Neutrino Type | |||
|---|---|---|---|
| Dirac | 12 | 0.695 | 0.3% |
| Majorana | 9 | 0.724 | 4.5% |
3. Selection Rules: Boundary Terms and Greybody Factors
3.1. Photon: Pure Gauge at
3.2. Weak Bosons (, Z): Geometric Parity
3.3. Gluons: Color Singlet
3.4. Higgs: Robin Boundary
3.5. Fermions: C-Symmetry and MIT Transmission
3.6. Summary of Selection Rules
4. Heat-Kernel Geometric Correction
5. Master Formula and Cosmological Mapping
5.1. Definition of
5.2. Geometric Normalization: The Mapping
5.2.1. Causal Diamond Geometry
5.2.2. Monopole Loading Field
5.2.3. Identification with
5.2.4. Interpretation
6. Numerical Inputs and Results
6.1. Standard Model Degeneracies
| Sector | d | Source | ||
|---|---|---|---|---|
| Photon () | 2 | 1.0000 | ||
| Gluons (g) | 16 | 1.0000 | adjoint | |
| Weak () | 9 | 1.0000 | ||
| Higgs (H) | 1 | 1.0000 | Scalar singlet | |
| Quarks | 36 | 0.2491 | 6 flav. × 3 col. × 2 spin | |
| Leptons | 12 | 0.2491 | 3 ch. + 3 (Dirac) × 2 spin |
6.2. Results Table
| Sector s | Seed | Net | ||
|---|---|---|---|---|
| QED (photon) | 2.106 | 0.000 | 0.000 | 2.106 |
| Weak () | 9.477 | 0.000 | 0.068 | 9.409 |
| QCD (gluons) | 16.849 | 0.000 | 0.000 | 16.849 |
| Higgs (scalar) | 1.053 | 0.000 | 0.000 | 1.053 |
| Quarks | 0.000 | 0.000 | ||
| Leptons | 0.000 | 0.000 | ||
| Totals | 17.528 | 0.000 | 0.068 | 17.460 |
7. Validation and Convergence
7.1. Fermion j-Cutoff Convergence
| 1.5 | 0.24906 | — |
| 3.5 | 0.24910 | |
| 5.5 | 0.24910 | |
| 7.5 | 0.24910 |
7.2. Bosonic Grid Convergence
| Grid () | ||
|---|---|---|
| 0.999974886 | ||
| 0.999993730 | ||
| 0.999998430 |
7.3. Sensitivity to Heat-Kernel Coefficient
| 0 (counterfactual) | 0.636 | 8.5% |
| 0.693 | 0.2% | |
| 0.695 | 0.0% (baseline) | |
| 0.697 | 0.3% |
7.4. Weak Greybody Factor Calibration
| T | |||
|---|---|---|---|
| 0.9985 | 0.00075 | 0.6950 | |
| 0.9850 | 0.00750 | 0.6947 | |
| 0.8510 | 0.07450 | 0.6920 |
7.5. Theoretical Error Budget
| Source | Notes | |
|---|---|---|
| Curvature uplift | 0.003 | |
| Fermion projector | 0.005 | BC class + selection |
| CDM vs de Sitter | 0.003 | correction |
| Collar width | 0.003 | Table 7 |
| corrections | Quadratic in h | |
| Numerical convergence | Table 4, Table 5 | |
| Gravitons omitted | Classical metric | |
| Total (quadrature) | 0.008 |
8. Discussion
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Geometric Derivation of the 8π Normalization
Appendix A.1. Causal Diamond Structure
Appendix A.2. Monopole Loading Definition
Appendix A.3. Integration Over Boundary
Appendix A.4. Normalization Matching
Appendix B. Heat-Kernel Derivation
Appendix C. Collar Transmission Calculation
- (i)
- For massless gauge bosons: TM/E at is pure gauge,
- (ii)
- For massive vectors (): Mode mixing creates reflection,
- (iii)
- For scalars: No mode mixing, adiabatic transmission
Appendix D. Fermion Projector Algorithm
Appendix D.1. Mode Spectrum
Appendix D.2. Selection Rule
Appendix D.3. KMS Weighting
Appendix E. Dimensional Analysis
| Quantity | Expression | Dimensions |
|---|---|---|
| Degeneracy count | [1] | |
| (Bose/Fermi) | [1] | |
| Thermal probability | [1] | |
| [1] | ||
| [1] | ||
| seed | [1] | |
| [1] |
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