로그인

2.5 : Gibbs Free Energy and Thermodynamic Favorability

The spontaneity of a process depends upon the temperature of the system. Phase transitions, for example, will proceed spontaneously in one direction or the other depending upon the temperature of the substance in question. Likewise, some chemical reactions can also exhibit temperature-dependent spontaneities. To illustrate this concept, the equation relating free energy change to the enthalpy and entropy changes for the process is considered:

Eq1

The spontaneity of a process, as reflected in the arithmetic sign of its free energy change, is then determined by the signs of the enthalpy and entropy changes and, in some cases, the absolute temperature. Since T is the absolute (kelvin) temperature, it can only have positive values. Four possibilities therefore exist with regard to the signs of the enthalpy and entropy changes:

  1. Both ΔH and ΔS are positive. This condition describes an endothermic process that involves an increase in system entropy. In this case, ΔG will be negative if the magnitude of the TΔS term is greater than ΔH. If the TΔS term is less than ΔH, the free energy change will be positive. Such a process is spontaneous at high temperatures and nonspontaneous at low temperatures.
  2. Both ΔH and ΔS are negative. This condition describes an exothermic process that involves a decrease in system entropy. In this case, ΔG will be negative if the magnitude of the TΔS term is less than ΔH. If the TΔS term’s magnitude is greater than ΔH, the free energy change will be positive. Such a process is spontaneous at low temperatures and nonspontaneous at high temperatures.
  3. ΔH is positive and ΔS is negative. This condition describes an endothermic process that involves a decrease in system entropy. In this case, ΔG will be positive regardless of the temperature. Such a process is nonspontaneous at all temperatures.
  4. ΔH is negative and ΔS is positive. This condition describes an exothermic process that involves an increase in system entropy. In this case, ΔG will be negative regardless of the temperature. Such a process is spontaneous at all temperatures.

The free energy change for a process may be viewed as a measure of its driving force. A negative value for ΔG represents a driving force for the process in the forward direction, while a positive value represents a driving force for the process in the reverse direction. When ΔGrxn is zero, the forward and reverse driving forces are equal, and the process occurs in both directions at the same rate (the system is at equilibrium).

Recall that Q is the numerical value of the mass action expression for the system, and its value may be used to identify the direction in which a reaction will proceed in order to achieve equilibrium. When Q is less than the equilibrium constant, K, the reaction will proceed in the forward direction until equilibrium is reached and Q = K. Conversely, if Q > K, the process will proceed in the reverse direction until equilibrium is achieved.

The free energy change for a process taking place with reactants and products present under nonstandard conditions (pressures other than 100 kPa; concentrations other than 1 M) is related to the standard free energy change according to this equation:

Eq2

R is the gas constant (8.314 J/K mol), T is the kelvin or absolute temperature, and Q is the reaction quotient. For a system at equilibrium, Q = K and ΔG = 0, and the previous equation may be written as

Eq3

Eq4

This form of the equation provides a useful link between these two essential thermodynamic properties, and it can be used to derive equilibrium constants from standard free energy changes and vice versa. The relations between standard free energy changes and equilibrium constants are summarized below.

If K > 1, ΔG° < 0 and the products are more abundant in the reaction mixture.

If K < 1, ΔG° > 0 and the reactants are more abundant in the reaction mixture.

If K = 1, ΔG° = 0 and the reactants and products are comparably abundant in the reaction mixture.

This text is adapted from Openstax, Chemistry 2e, Section 16.4: Free Energy.

Tags
Gibbs Free EnergyThermodynamic FavorabilitySpontaneityTemperaturePhase TransitionsChemical ReactionsFree Energy ChangeEnthalpy ChangeEntropy ChangeAbsolute TemperatureEndothermic ProcessSystem EntropyExothermic Process

장에서 2:

article

Now Playing

2.5 : Gibbs Free Energy and Thermodynamic Favorability

Thermodynamics and Chemical Kinetics

5.6K Views

article

2.1 : Chemical Reactions

Thermodynamics and Chemical Kinetics

8.6K Views

article

2.2 : Enthalpy and Heat of Reaction

Thermodynamics and Chemical Kinetics

7.3K Views

article

2.3 : Energetics of Solution Formation

Thermodynamics and Chemical Kinetics

5.7K Views

article

2.4 : Entropy and Solvation

Thermodynamics and Chemical Kinetics

5.9K Views

article

2.6 : Chemical and Solubility Equilibria

Thermodynamics and Chemical Kinetics

3.7K Views

article

2.7 : Rate Law and Reaction Order

Thermodynamics and Chemical Kinetics

7.1K Views

article

2.8 : Effect of Temperature Change on Reaction Rate

Thermodynamics and Chemical Kinetics

3.6K Views

article

2.9 : Multi-Step Reactions

Thermodynamics and Chemical Kinetics

6.8K Views

article

2.10 : Bond Dissociation Energy and Activation Energy

Thermodynamics and Chemical Kinetics

7.0K Views

article

2.11 : Energy Diagrams, Transition States, and Intermediates

Thermodynamics and Chemical Kinetics

13.7K Views

article

2.12 : Predicting Reaction Outcomes

Thermodynamics and Chemical Kinetics

6.9K Views

JoVE Logo

개인 정보 보호

이용 약관

정책

연구

교육

JoVE 소개

Copyright © 2025 MyJoVE Corporation. 판권 소유