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MHT CET · Chemistry · Electrochemistry

What is the standard free energy change for the cell, having following cell reaction?
\(2 \mathrm{Ag}_{(\mathrm{aq} .)}^{+}+\mathrm{Cd}_{(\mathrm{s})} \longrightarrow 2 \mathrm{Ag}_{(\mathrm{s})}+\mathrm{Cd}_{(\mathrm{aq})}^{2+}, \mathrm{E}^{\circ} \mathrm{cell}\) \(=1 \cdot 20 \mathrm{~V}\)

  1. A \(-231 \cdot 6 \mathrm{~kJ}\)
  2. B \(-160 \cdot 8 \mathrm{~kJ}\)
  3. C \(-115 \cdot 8 \mathrm{~kJ}\)
  4. D \(-260 \cdot 8 \mathrm{K} \mathrm{j}\)
Verified Solution

Answer & Solution

Correct Answer

(A) \(-231 \cdot 6 \mathrm{~kJ}\)

Step-by-step Solution

Detailed explanation

\(2 \mathrm{Ag}_{(\mathrm{aq})}^{+}+\mathrm{Cd}_{(\mathrm{s})} \longrightarrow 2 \mathrm{Ag}_{(\mathrm{s})}+\mathrm{Cd}_{(\mathrm{aq})}^{2+}\)
\(\therefore \mathrm{n}=2\)
\(\Delta \mathrm{G}^{0}=-\mathrm{nFE}_{\mathrm{cell}}^{0}=-2 \times 96500 \times 1.20=\) \(-231600 \mathrm{~J}=-231.6 \mathrm{~kJ}\)