Calculate the standard e.m.f. of the reaction
`Fe^(3+)+3e^(-)rarrFe_((s))`. Given the e.m.f. values of
`Fe^(3+)+e rarr Fe^(2+) and Fe^(2+)+2e rarr Fe_((s))" as "+0.771 V and =0.44V " respectively."`

Calculate the equilibrium constant for the reaction : 2Fe^(3+)+3I^(-)hArr 2Fe^(2+)+I_(3)^(-) . Given: Standard reduction potential in acidic conditions is 0.78 V and 0.54 V, respectively, for Fe^(3+)|Fe^(2+) and I_(3)^(-)|I^(-) couples.

What will be the standard electrode potential for the change, Fe^(3+)(aq)+e rarr Fe^(2+)(aq). Given : E_(Fe^(3+)|Fe)^(@)=-0.036V, E_(Fe^(2+)|Fe)^(@)=-0.439V

Calculate the equilibrium constant for the reaction: Fe^(2+)+Ce^(4+)hArr Fe^(3+)+Ce^(3+) Given : E_((Ce^(4+)|Ce^(3+)))^(@)=1.44V, e_((Fe^(3+)|Fe^(3+)))^(@)=0.68V

Calculate, the DeltaH at 85^@ for the reaction : Fe_2O_3(s) + 3H_2 to 2Fe (s) + 3H_2O(l) The data are : Delta (298)^@ = -33.29 kJ/mol and

The standard free energy of the reaction Fe(s)+Sn^(2+)(aq, 1M)rarr Fe^(2+)(aq, 1M)+Sn(s) is ("given : at "25^(@)C, E_(Fe^(2+)|Fe)^(@)=-0.44V and E_(Sn^(2+)|Sn)^(@)=-0.14V)-

Determine the equilibrium constant for the reaction : Fe^(2+)(aq)+Ce^(4+)(aq)rarr Fe^(3+)(aq)+Ce^(3+)(aq) Givne : E_(Ce^(4+)|Ce^(3+))^(@)=1.44V & E_(Fe^(3+)|Fe^(2+))^(@)=0.77V .

The emf values of the cell reactions Fe^(3+)+e^(-)rarr Fe^(2+) and Ce^(2+)rarr Ce^(3+)+e^(-) are 0.61 V and -0.85V respectively. Construct the cell such that the free energy change of the cell is negative. Calculate the emf of the cell.

The electrode potential for Cu^(2+)(aq)+e rarr Cu^(+)(aq) and Cu^(+)(aq)+e rarr Cu(s) are 0.15V and 0.50V respectively. The value of E_(Cu^2+)|Cu^(@) will be -

Write Nernst equation for electrode potential for the following electrodes : (b) Fe^(2+)rarr Fe^(3+)+e

Standard reduction potential (E^(0)) of Mn^(3+)|Mn^(2+) system is higher than that of Cr^(3+)|Cr^(2+) and Fe^(3+)|Fe^(2+) system. Explain.