Respuesta :
Answer: c. ΔH˚ is positive and ΔS˚ is positive
Explanation:
According to Gibb's equation:
[tex]\Delta G=\Delta H-T\Delta S[/tex]
[tex]\Delta G[/tex] = Gibbs free energy
[tex]\Delta H[/tex] = enthalpy change
[tex]\Delta S[/tex] = entropy change
T = temperature in Kelvin
[tex]\Delta G[/tex]= +ve, reaction is non spontaneous
[tex]\Delta G[/tex]= -ve, reaction is spontaneous
[tex]\Delta G[/tex]= 0, reaction is in equilibrium
Thus for [tex]\Delta G=-ve[/tex]
Case :
[tex]T\Delta S[/tex] > [tex]\Delta H[/tex]
when [tex]\Delta S\text{ and }\Delta H[/tex] both have positive values.
[tex]\Delta G=(+ve)-T(+ve)[/tex]
[tex]\Delta G=(+ve)(-ve)=-ve[/tex]
Reaction is spontaneous only at at high temperatures.
Given that the reaction is spontaneous only at high temperature, one would predict that ΔH˚ is positive and ΔS˚ is positive (Option C)
Gibbs free energy
ΔG = ΔH – TΔS
Where
- ΔG is the Gibbs free energy
- ΔH is the enthalpy change
- T is the temperature
- ΔS is the change in entropy
NOTE
- ΔG = +ve (non spontaneous)
- ΔG = 0 (equilibrium)
- ΔG = –ve (spontaneous)
Since the reaction is at high temperature, then TΔS must be greater than ΔH for ΔG to be negative (i.e spontaneous).
Thus, ΔH and ΔS must be positive for the reaction to be spontaneous as illustrated below:
- ΔH = +ve
- ΔS = +ve
- ΔG =?
ΔG = ΔH – TΔS
ΔG = (+ve) – T(+ve)
ΔG = –ve
Learn more about Gibbs free energy:
https://brainly.com/question/9552459
