Given the electrode potentials Fe 3++e- longrightarrow Fe 2+, E°=0.771 volt I 2+2 e- longrightarrow 2 I -, E°=0.536 volt E text cell ° for the cell reaction 2 Fe 3++2 I - longrightarrow 2 Fe 2++ I 2, is :

Question

Given the electrode potentials Fe 3++e- longrightarrow Fe 2+, E°=0.771 volt I 2+2 e- longrightarrow 2 I -, E°=0.536 volt E text cell ° for the cell reaction 2 Fe 3++2 I - longrightarrow 2 Fe 2++ I 2, is : (A) 1.006 V (B) 0.503 V (C) 0.235 V (D) -0.235 V

Tardigrade Admin · Accepted Answer

Cell reaction: 2 Fe 3++2 I - arrow 2 Fe 2++ I 2 Fe 3+ shows reduction while I -shows oxidation (reduction occurs at cathode while oxidation takes place at anode) E text cell °=E text cathode °-E text anode ° Given, E text cathode °( Fe 3+ / Fe 2+)=0.771 V and E text anode °(I / I2)=0.536 V ∴ E text cell °=0.771-0.536 =0.235 V

Q. Given the electrode potentials Fe3++e−⟶Fe2+,E∘=0.771 volt I2​+2e−⟶2I−,E∘=0.536 volt Ecell ∘​ for the cell reaction 2Fe3++2I−⟶2Fe2++I2​, is :

1.006 V

0.503 V

0.235 V

-0.235 V

Q. Given the electrode potentials
$F e^{3 +} + e^{-} ⟶ F e^{2 +}, E^{\circ} = 0.771$ volt
$I_{2} + 2 e^{-} ⟶ 2 I^{-}, E^{\circ} = 0.536$ volt
$E_{cell}^{\circ}$ for the cell reaction
$2 F e^{3 +} + 2 I^{-} ⟶ 2 F e^{2 +} + I_{2}$ , is :