Q.Which of the following is not correct?
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Start your 14-day free trial to unlock the full solution →Gibbs free energy is the criterion for spontaneity: negative for spontaneous processes, positive for non-spontaneous ones, and zero at equilibrium. The incorrect statement is (ii) — spontaneous reactions have , not positive.
The Gibbs free energy change is the single most powerful predictor of whether a process will occur on its own. It combines both the enthalpy change (energy released or absorbed) and the entropy change (disorder created or destroyed) into one number that tells us the direction of spontaneity.
The fundamental relationship is:
When , the process releases free energy into the surroundings and proceeds spontaneously. When , the process requires an input of free energy and will not occur without external intervention. When , the system is at equilibrium — no net change occurs because forward and reverse processes balance perfectly.
Let me examine each statement:
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Statement (i): ΔG is zero for a reversible reaction
A reversible reaction in thermodynamics means a process at equilibrium, where the system can shift infinitesimally in either direction with no net driving force. At equilibrium, the free energy of products equals that of reactants, so . This is correct.
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Statement (ii): ΔG is positive for a spontaneous reaction
This contradicts the fundamental criterion. A spontaneous reaction proceeds on its own because it moves toward lower free energy — the system "falls downhill" energetically. This requires , not positive. A positive means the reaction is non-spontaneous in the forward direction. This statement is incorrect.
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Statement (iii): ΔG is negative for a spontaneous reaction …
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