Calculate the equilibrium constant for the reaction Fe2+ + Ce4+ leftharpoons Fe3+ + Ce3+ Given E° (Ce4+/Ce3+)=1.44 V, E° ( Fe3+/ Fe2+)=0.68 V

Question

Calculate the equilibrium constant for the reaction Fe2+ + Ce4+ leftharpoons Fe3+ + Ce3+ Given E° (Ce4+/Ce3+)=1.44 V, E° ( Fe3+/ Fe2+)=0.68 V (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Fe2+ + Ce4+ leftharpoons Fe3+ + Ce3+ E° =E° (Ce4+/Ce3+)- E°(Fe3+/Fe2+) = 1.44 - 0.68 = 0.76 V ∵ E° = 0.0592 log K ⇒ log K = (E° /0.0592) =(0.76/0.0592)=12.83 ⇒ k = 6.88 × 1012

Q. Calculate the equilibrium constant for the reaction Fe2++Ce4+⇌Fe3++Ce3+ Given E∘(Ce4+/Ce3+)=1.44V,E∘(Fe3+/Fe2+)=0.68V

Fe2++Ce4+⇌Fe3++Ce3+ E∘=E∘(Ce4+/Ce3+)−E∘(Fe3+/Fe2+) =1.44−0.68=0.76V ∵E∘=0.0592logK ⇒logK=0.0592E∘​=0.05920.76​=12.83 ⇒k=6.88×1012

Q. Calculate the equilibrium constant for the reaction
$F e^{2 +} + C e^{4 +} ⇌ F e^{3 +} + C e^{3 +}$
Given $E^{\circ} (C e^{4 +} / C e^{3 +}) = 1.44 V, E^{\circ} (F e^{3 +} / F e^{2 +}) = 0.68 V$