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TS EAMCET · Chemistry · Electrochemistry

For the following cell reaction,
\(Ag \left| Ag ^{+}\right| AgCl \left| Cl ^{\ominus}\right| Cl _2, Pt \Delta G_f^{\circ}( AgCl )\)
\(=-109 kJ / mol \Delta G_f^{\circ}\left( Cl ^{\ominus}\right)\)
\(=-129 kJ / mol \Delta G_f^{\circ}\left( Ag ^{+}\right)=78 kJ / mol\)
\(E^{\circ}\) of the cell is

  1. A –0.60 V
  2. B 0.60 V
  3. C 6.0 V
  4. D None of these
Verified Solution

Answer & Solution

Correct Answer

(A) –0.60 V

Step-by-step Solution

Detailed explanation

For the given cell, \(\mathrm{Ag}\left|\mathrm{Ag}^{+}\right| \mathrm{AgCl}\left|\mathrm{Cl}^{\ominus}\right| \mathrm{Cl}_2, \mathrm{Pt}\) the cell reactions are as follows…