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A reaction has `DeltaH=-33KJ` and `DeltaS=-58(J)/(H)` . This reaction would be:A. spontanceous at all temperaturesB. non-spontaneous at all temperaturesC. spontaneous above a certain temperatureD. spontaneous below a certain temperature |
Answer» Correct Answer - B `DeltaG=underset(-ve)undersetdarr((DeltaH))-Tunderset(-ve)undersetdarr((DeltaS))` Since both are `-ve` , the reaction would have a `-veDeltaG` below a temperature of `(33000)/(58)K(=569K)` . |
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