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Question
For the reaction at 298 K: \[\ce{2A + B -> C}\]
ΔH = 400 KJ mol−1; ΔS = 0.2 KJ K−1 mol−1 Determine the temperature at which the reaction would be spontaneous.
Solution
Given, T = 298 K
ΔH = 400 KJ mol−1
ΔS = 0.2 KJ K−1 mol−1
ΔG = ΔH − TΔS
if T = 2000 K
ΔG = 400 − (0.2 × 2000) = 0
ΔH = 400 KJ mol−1 if T > 2000 K
ΔG will be negative.
The reaction would be spontaneous only beyond 2000 K
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