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Relationship between equilibrium constant K, reaction quotient Q and Gibbs energy G. ... ΔG is negative, then the reaction is spontaneous and proceeds in the forward direction. ΔG is positive, then reaction is considered non-spontaneous. Instead, as reverse reaction would take place.
Explanation:
What is the relation between Gibbs free energy and equilibrium constant?
The equation, ΔG = ΔG°+ RT ln Q, is derived on Wikipedia, under the subsection Thermodynamics. Remember, Q is the reaction quotient, which at equilibrium is equal to the equilibrium constant, K. Then you have your equation ΔG = ΔG°+ RT ln K.
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