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AP EAMCET · Chemistry · Electrochemistry

Consider the cell reaction, at 300 K
\(\mathrm{A}(s)+\mathrm{B}^{2+}(a q) \rightleftharpoons \mathrm{A}^{2+}(a q)+\mathrm{B}(s)\)
Its \(\mathrm{E}^{\circ}\) is 1.0 V . The \(\Delta_{\mathrm{r}} \mathrm{H}^{\circ}\) of the reaction is \(-163 \mathrm{~kJ} \mathrm{~mol}^{-1}\). What is \(\Delta_{\mathrm{r}} \mathrm{S}^{\circ}\) (in J K\({ }^{-1}\) ) of the reaction?
\(\left(\mathrm{F}=96500 \mathrm{C} \mathrm{~mol}^{-1}\right)\)

  1. A 10
  2. B 100
  3. C 1000
  4. D 10000
Verified Solution

Answer & Solution

Correct Answer

(B) 100

Step-by-step Solution

Detailed explanation

Given,…