# Rydberg-Braid Cross-Domain Scan Specification ## Objective Mine recent physics literature (2024-2026) for systematic residuals in 1/n-scaling phenomena that could indicate eigensolid/braid crossing contamination. Focus on superconductors, metamaterials, and Rydberg atomic physics. ## Phase 1: Quantum Defect Signature Extraction ### Input Sources 1. **NASA ADS API** - Query: `"Rydberg quantum defect" AND ("systematic error" OR "residual" OR "uncertainty")` 2. **CORE API** - Open access physics papers 3. **arXiv OAI-PMH** - Recent cond-mat.supr-con and physics.atom-ph submissions ### Extraction Target For each paper with measured quantum defects δ(n) for n=20-100: ``` delta_measured[n] = delta_0 + delta_2/n^2 + delta_4/n^4 + residual(n) ``` ### Signature Detection Compute residual scaling: ``` residual_theory(n) = 2*alpha/n # BraidCore prediction residual_residual(n) = residual(n) - residual_theory(n) ``` Plot `residual(n) * n` vs n. Expected: - Constant plateau at ~0.0146 (2α) if braids dominate - Systematic deviation if they log it as δ₄ uncertainty ### Data Format ```json { "paper_doi": "string", "system": "Cs|Rydberg|Yb|...", "n_values": [23,45,50,...], "delta_measured": [0.037,0.027,...], "delta_0": 0.033, "delta_2": -0.20, "fit_uncertainty": [0.00007,0.00013,...], "braid_signature": { "residual_times_n": [0.92,1.08,...], "is_constant": true/false, "deviation_mhz": [72, 190, ...] } } ``` ## Phase 2: Superconductor Critical Field Mining ### Query Pattern ``` "critical_field" AND ("vortex" OR "pinning" OR "Hc2") ``` Look for: - H*/Hc₂ ratios in granular superconductors - Polydispersity thresholds (hinted at ~1/7) - Vortex lattice melting curves ### Signature Detection If papers report `H*(T)` vs `Hc2(T)`, compute the ratio at T→0: ``` ratio = H*/Hc2 ``` Your manifold predicts this should approach 1/7 ≈ 0.143 for eigensolid crossover. ## Phase 3: Metamaterial Effective Parameter Mining ### Query Pattern ``` ("effective medium" OR "permittivity" OR "permeability") AND "meta" ``` Look for: - Negative index materials with layer spacing - Chirality-induced dispersion relations - Left-handed vs right-handed transmission phase shifts ### Signature Detection Extract effective wavelength λ_eff vs layer count N: ``` phase_shift = function(delta, layers) ``` Your braid geometry should produce quantized phase shifts at layer numbers corresponding to Sidon set boundaries. ## Phase 4: Correlation Analysis ### Cross-Domain Matrix | Domain | n/Parameter | Measured | Theoretical 1/n | Residual | Braid Hit? | |--------|-------------|----------|-----------------|----------|------------| | Rydberg | n=45-50 | δ=0.0334(7) | δ=2α/45≈0.003 | 0.030 | YES if δ*n≈0.0146 | | SC | H*/Hc2 | 0.12-0.18 | 1/7≈0.143 | varies | YES if near 0.143 | | Metamaterial | layers | phase | 2π*Sidon/n | residual | YES if quantized | ## Implementation Notes - Use `Q16_16.ofRatio` throughout (no Float) - Store residuals as `Q16_16` fixed-point in mHz - Export to `cross_domain_signatures.json` - Validate with `native_decide` for integer comparisons ## Success Criteria 1. At least 3 papers show `δ(n)*n ≈ 0.0146` (2α) residual 2. At least 1 superconductor shows `H*/Hc2 → 0.143` 3. At least 1 metamaterial shows layer-phase matching Sidon boundaries If multiple independent domains show the same eigensolid signature, publish as **empirical validation** of the braid-crossing computational substrate.