Answer:
The temperature above which the reaction be spontaneous is 331.3 K.
Below this temperature; the backward reaction is the favored reaction.
Explanation:
ΔG = ΔH - TΔS
ΔG is the free energy change of the reaction,
ΔH is the enthalpy change of the reaction,
ΔS is the entorpy change of the reaction,
When ΔG = 0, ΔH = TΔS.
For this reaction, ΔH = 30.91 KJ and ΔS = 0.0933 KJ/K.
T = ΔH / ΔS = (30.91 KJ) / (0.0933 KJ/K) = 331.29 K ≅ 331.3 K.
∴ The temperature above which the reaction be spontaneous is 331.3 K.
Below this temperature; the backward reaction is the favored reaction.