Respuesta :
The correct answer is D. 396 kJ. ΔG will be negative for this value of TΔS indicating a spontaneous reaction.
Further Explanation:
- The value of the Gibbs Free Energy (ΔG) determines the spontaneity of the reaction.
- To get this value, an equation than shows the relationship among the Gibbs Free Energy (ΔG), enthalpy (ΔH), entropy (ΔS), and temperature is used: [tex]dG \ = dH \ - TdS[/tex]
- A positive ΔG represents a non-spontaneous reaction
- A negative ΔG value indicates a spontaneous reaction.
A. -198 kJ FALSE because this gives a positive ΔG.
[tex]dG \ = \ 198 \ kJ \ - \ (-198 \ kJ) \\\boxed {dG = 396 \ kJ}[/tex]
B. 198 kJ FALSE because this results in ΔG = 0. The reaction is at equilibrium.
[tex]dG \ = \ 198 \ kJ \ - \ 198 \ kJ \\\boxed {dG = 0}[/tex]
C. 0 kJ FALSE because this results in a positive ΔG.
[tex]dG = 198 \ kJ \ - \ 0\\\boxed {dG = 198 \ kJ}[/tex]
D. 396 kJ TRUE because this results in a negative ΔG.
[tex]dG = \ 198 \ kJ \ - \ 396 \ kJ\\\boxed {dG = -198 \ kJ}[/tex]
Learn More
- Learn more about enthalpy https://brainly.com/question/1127247
- Learn more about entropy https://brainly.com/question/490678
- Learn more about Gibbs Free Energy https://brainly.com/question/9552459
Keywords: Gibbs Free Energy, spontaneity