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NCERT Exemplar · Q35

Q.Which quantity out of ΔrG and ΔrG° will be zero at equilibrium?

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At equilibrium, the actual change in Gibbs free energy for the reaction, ΔrG\Delta_r G, becomes zero, indicating no net driving force for the reaction. The standard Gibbs free energy change, ΔrG∘\Delta_r G^\circ, is generally not zero at equilibrium, as it refers to a hypothetical state where all species are in their standard conditions.

In chemical thermodynamics, Gibbs free energy (GG) is a crucial state function that helps predict the spontaneity of a process and determine the position of equilibrium under constant temperature and pressure. The change in Gibbs free energy for a reaction, ΔrG\Delta_r G, represents the maximum non-expansion work that can be extracted from a reaction, or the minimum work required to drive a non-spontaneous reaction.

The key to understanding which quantity is zero at equilibrium lies in distinguishing between ΔrG\Delta_r G and ΔrG∘\Delta_r G^\circ.

  • ΔrG\Delta_r G (Gibbs Free Energy Change): This is the actual change in Gibbs free energy for a reaction under any given set of conditions (i.e., specific concentrations or partial pressures of reactants and products). It tells us the spontaneity and direction of a reaction under those specific, current conditions.
  • ΔrG∘\Delta_r G^\circ (Standard Gibbs Free Energy Change): This is the change in Gibbs free energy for a reaction when all reactants and products are in their standard states. Standard states are defined as:
    • For gases: 1 bar (or 1 atm, depending on convention) partial pressure.
    • For solutions: 1 M concentration.
    • For pure solids and liquids: The pure substance in its most stable form at 1 bar and the specified temperature. ΔrG∘\Delta_r G^\circ is a constant value for a given reaction at a specific temperature, as it refers to a fixed, hypothetical set of conditions.

Let's break down their roles at equilibrium.

  1. Understanding Equilibrium:

    Equilibrium is a dynamic state where the rates of the forward and reverse reactions are equal, resulting in no net change in the concentrations of reactants and products over time. At equilibrium, the system has no further tendency to change spontaneously in either direction.

  2. The Role of ΔrG\Delta_r G:

    The sign of ΔrG\Delta_r G dictates the spontaneity and direction of a reaction:

    • If ΔrG<0\Delta_r G < 0, the reaction is spontaneous in the forward direction.
    • If ΔrG>0\Delta_r G > 0, the reaction is spontaneous in the reverse direction.
    • If ΔrG=0\Delta_r G = 0, the system is at equilibrium, and there is no net tendency for the reaction to proceed in either direction. Therefore, by definition, at equilibrium, the actual Gibbs free energy change for the reaction, ΔrG\Delta_r G, must be zero. It represents the point where the driving force for the reaction has been completely expended.
  3. The Role of ΔrG∘\Delta_r G^\circ:

    ΔrG∘\Delta_r G^\circ is a fixed value for a given reaction at a specific temperature. It tells us about the spontaneity of a reaction if all species were in their standard states. It does not change as the reaction proceeds towards equilibrium. The system reaches equilibrium by adjusting the concentrations (or partial pressures) of reactants and products, which in turn changes ΔrG\Delta_r G, but not ΔrG∘\Delta_r G^\circ.

    Watch out

    A common misconception is to assume that ΔrG∘\Delta_r G^\circ is zero at equilibrium. Remember, ΔrG∘\Delta_r G^\circ is a constant reference value, while ΔrG\Delta_r G is the actual, changing value that reaches zero at equilibrium.

  4. Relationship between ΔrG\Delta_r G and ΔrG∘\Delta_r G^\circ:

    The relationship between ΔrG\Delta_r G and ΔrG∘\Delta_r G^\circ is given by the equation:

    ΔrG=ΔrG∘+RTln⁡Q\Delta_r G = \Delta_r G^\circ + RT \ln Q …

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