Question:

If $G$ represents Gibbs free energy, select the correct statement(s).

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Remember: $\Delta G = 0$ → equilibrium, $\Delta G<0$ → spontaneous, $\Delta G>0$ → non-spontaneous.
Updated On: Dec 17, 2025
  • If $\Delta G = 0$, reaction will proceed only in one direction
  • If $\Delta G = 0$, reaction will be in equilibrium
  • If $\Delta G<0$, reaction will proceed forward
  • If $\Delta G>0$, reaction will not proceed forward
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The Correct Option is B, C, D

Solution and Explanation

Gibbs free energy determines the spontaneity of chemical reactions under constant pressure and temperature.
Step 1: Interpret ΔG.
- If $\Delta G = 0$, the reaction is at equilibrium; forward and backward rates are equal. - If $\Delta G<0$, the reaction is spontaneous in the forward direction. - If $\Delta G>0$, the forward reaction is non-spontaneous.
Step 2: Evaluate given statements.
(A) Incorrect — $\Delta G = 0$ does \textit{not} imply one-direction movement; it implies no net reaction.
(B) Correct — equilibrium condition.
(C) Correct — negative ΔG means spontaneous forward reaction.
(D) Correct — positive ΔG means the reaction will not proceed forward spontaneously.
Thus, the correct statements are (B), (C), and (D).
Final Answer: (B), (C), (D)
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