Pre-Equilibria Conditions in Reaction Mechanisms5Br-(aq)+BrO3-(aq)+6H+(aq)longrightarrow3Br2(I)+3H2O(I)The above reaction is expected to

In reactions involving multiple steps, some early steps are fast and reversible, establishing equilibrium before the slow, rate-determining step occurs.

This is the principle behind the pre-equilibrium approximation. The concentrations of intermediates are expressed in terms of original reactants using equilibrium constants, so the final rate law includes only measurable species.

Elementary Steps

• Fast equilibrium: BrO₃⁻ + H⁺ ⇌ HBrO₃
• Fast equilibrium: HBrO₃ + H⁺ ⇌ H₂BrO₃⁺
• Slow (rate-determining step): H₂BrO₃⁺ + Br⁻ → (Br–BrO₂) + H₂O
• Fast: (Br–BrO₂) + 4H⁺ + 4Br⁻ → Products

Rate Law Derivation

The slow step determines the rate:
Rate = k₃[H₂BrO₃⁺][Br⁻]

Using Equilibria:

• K₁ = [HBrO₃] / ([BrO₃⁻][H⁺]) ⇒ [HBrO₃] = K₁[BrO₃⁻][H⁺]
• K₂ = [H₂BrO₃⁺] / ([HBrO₃][H⁺]) ⇒ [H₂BrO₃⁺] = K₂[HBrO₃][H⁺]
• Substituting: [H₂BrO₃⁺] = K₂ ⋅ K₁ ⋅ [BrO₃⁻] ⋅ [H⁺]²

Substituting back into the rate expression:
Rate = k₃ ⋅ K₁ ⋅ K₂ ⋅ [BrO₃⁻] ⋅ [H⁺]² ⋅ [Br⁻]
Let k = k₃ ⋅ K₁ ⋅ K₂, then:
Final Rate Law: Rate = k [BrO₃⁻][Br⁻][H⁺]²

Correct Rate Expressions

• ✅ Rate = k [BrO₃⁻][Br⁻][H⁺]²
• ✅ −d[Br⁻]/dt = k [BrO₃⁻][Br⁻][H⁺]²
• ✅ d[(Br–BrO₂)]/dt = k [BrO₃⁻][Br⁻][H⁺]²

Incorrect Expressions & Why They’re Wrong

• ❌ k[H⁺][Br⁻][BrO₃⁻]²: BrO₃⁻ should be 1st order, H⁺ should be 2nd order.
• ❌ −d[H⁺]/dt = k[Br⁻][BrO₃⁻][H⁺]: H⁺ is 1st order — it should be 2nd.
• ❌ −d[Br⁻]/dt = k[Br⁻]²[BrO₃⁻][H⁺]: Br⁻ is 2nd order — should be 1st; H⁺ is only 1st order.