Ask Question
28 September, 07:17

The free energy change for the following reaction at 25 °C, when [Cd2+] = 1.20 M and [Fe2+] = 1.40*10-3 M, is - 23.9 kJ: Cd2 + (1.20 M) + Fe (s) Cd (s) + Fe2 + (1.40*10-3 M) ΔG = - 23.9 kJ What is the cell potential for the reaction as written under these conditions? Answer: - 24.07 V Would this reaction be spontaneous in the forward or the reverse direction?

+4
Answers (1)
  1. 28 September, 10:21
    0
    It's spontaneous in the reverse direction

    Explanation:

    A negative voltage indicate s that the reverse reaction is spontaneous (i. e. oxidation at the cathode, and reduction at the anode; by convention you would need to swap the labels on the electrodes)
Know the Answer?
Not Sure About the Answer?
Get an answer to your question ✅ “The free energy change for the following reaction at 25 °C, when [Cd2+] = 1.20 M and [Fe2+] = 1.40*10-3 M, is - 23.9 kJ: Cd2 + (1.20 M) + ...” in 📙 Chemistry if there is no answer or all answers are wrong, use a search bar and try to find the answer among similar questions.
Search for Other Answers