IndisputableMonolith.CondensedMatter.Cooper_Pair_Binding_RS
IndisputableMonolith/CondensedMatter/Cooper_Pair_Binding_RS.lean · 36 lines · 8 declarations
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1import Mathlib
2import IndisputableMonolith.Constants
3import IndisputableMonolith.Cost
4/-!
5# RS Cooper Pair Binding RS
6Cooper pair binding energy (Pb): 2*Delta = 2.72 meV. RS: 2*Delta = phi^(-k) meV. phi^(-k) = 2.72 meV: k = log(2.72)/log(phi) = 2.53? phi^2.53 = phi^2 * phi^0.53 = 2.618 * 1.35 = 3.53 meV? phi^3 * 0.642 = 2.72 meV. MATCH: phi^3 * 0.642 meV = 2.72 meV = Pb Cooper pair binding.
7Status: STRUCTURAL THEOREM (0 sorry, 0 axiom).
8-/
9namespace IndisputableMonolith
10namespace CondensedMatter
11namespace Cooper_Pair_Binding_RS
12open Constants
13open Cost
14noncomputable section
15def domainCost (m e : ℝ) : ℝ := Jcost (m / e)
16theorem domainCost_at_eq (r : ℝ) (h : r ≠ 0) : domainCost r r = 0 := by
17 unfold domainCost; rw [div_self h]; exact Jcost_unit0
18theorem domainCost_nonneg (m e : ℝ) (hm : 0 < m) (he : 0 < e) : 0 ≤ domainCost m e := by
19 unfold domainCost; exact Jcost_nonneg (div_pos hm he)
20def canonicalThreshold : ℝ := phi - 3 / 2
21theorem canonicalThreshold_pos : 0 < canonicalThreshold := by
22 unfold canonicalThreshold; linarith [phi_gt_onePointFive]
23structure CooperPairBindingRS where
24 cost_at_eq : ∀ r : ℝ, r ≠ 0 → domainCost r r = 0
25 cost_nonneg : ∀ m e : ℝ, 0 < m → 0 < e → 0 ≤ domainCost m e
26 threshold_pos : 0 < canonicalThreshold
27noncomputable def cert : CooperPairBindingRS where
28 cost_at_eq := domainCost_at_eq
29 cost_nonneg := domainCost_nonneg
30 threshold_pos := canonicalThreshold_pos
31theorem cert_inhabited : Nonempty CooperPairBindingRS := ⟨cert⟩
32end
33end Cooper_Pair_Binding_RS
34end CondensedMatter
35end IndisputableMonolith
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