Question

Find the $E^0$ value for the reaction,
$I{n}^{2+}\left(aq\right)+C{u}^{2+}\left(aq\right)\rightleftharpoons I{n}^{3+}\left(aq\right)+C{u}^{+}\left(aq\right)$ at $298K$.
Given:
$E_{C{u}^{2+}\left(aq\right)/C{u}^{+}\left(aq\right)}^0=0.15V{E}_{I{n}^{2+}\left(aq\right)/I{n}^{+}\left(aq\right)}^0=-0.4V$
$E_{I{n}^{3+}\left(aq\right)/I{n}^{+}\left(aq\right)}^0=-0.42V$

• A. $0.59V$
• B. $1.23V$
• C. $0.23V$
• D. $0.97V$

Answer 1

The correct option is A $0.59V$

$\Delta G^0=-nF{E}^0$
The given reversible reaction can be obtained as,
$C{u}^{2+}\left(aq\right)+e^{-}\to C{u}^{+}\left(aq\right)......\left(1\right);\Delta G_1^0=-0.15F$
$I{n}^{2+}\left(aq\right)+e^{-}\to I{n}^{+}\left(aq\right)......\left(2\right);\Delta G_2^0=+0.40F$
$I{n}^{3+}\left(aq\right)+2e^{-}\to I{n}^{+}\left(aq\right).......\left(3\right);\Delta G_3^0=+0.84F$
Reversing equation (3), we get,
$I{n}^{+}\left(aq\right)\to I{n}^{3+}\left(aq\right)+2e^{-}......\left(4\right);\Delta G_4^0=-0.84F$
Adding equation (1), (2) and (4), we get,
$C{u}^{2+}\left(aq\right)+I{n}^{2+}\left(aq\right)\rightleftharpoons I{n}^{3+}\left(aq\right)+C{u}^{+}\left(aq\right);\Delta G^0=-F{E}^o$
$\because$
Number of electron involved in the reaction is 1.
$\Delta G^0=\Delta G_1^0+\Delta G_2^0+\Delta G_4^0$
$\Delta G^0=-0.59F$
$-F{E}^0=-0.59F$
$\therefore$
$E^0=0.59V$