Answer to Question #317985 in Physical Chemistry for Nibedita Rudra

Question #317985

If Kp>1 for a reaction, comment on the sign of standard free energy change of the reaction.

Expert's answer

The equilibrium constant (K_p) is related to the standard Gibbs free energy change of reaction ("\\Delta" G):

"\\Delta" G = - R * T * ln(K_p);

If K_p = >1, then ln(K_p) = >0 (or +, possitive).

If ln(K_p) = >0 (or +) then the standard free energy change of reaction: "\\Delta" G = - R * T * ln(K_p).

Therefore, the sign of the standard free energy change of reaction is negative.

Answer: negative (-).

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