Respuesta :
This, is an incomplete question, here is a complete question.
Under what conditions does an increase in temperature turn a nonspontaneous process into a spontaneous process?
Choose one or more:
ΔH < 0, ΔS > 0
ΔH > 0, ΔS > 0
ΔH > 0, ΔS < 0
ΔH < 0, ΔS < 0
(What I'm trying to figure out is if you need to consider T being negative OR positive to start)
Answer : The correct option is, ΔH > 0, ΔS > 0
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
As we know that:
[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
As there are 4 conditions:
(A) ΔH is positive or (ΔH>0) and ΔS is negative or (ΔS<0).
[tex]\Delta G=\Delta H-T\Delta S[/tex]
[tex]\Delta G=(+ve)-T(-ve)[/tex]
[tex]\Delta G=(+ve)[/tex]
The reaction is non-spontaneous at all temperatures or spontaneous in reverse at all temperatures.
(B) ΔH is positive or (ΔH>0) and ΔS is positive or (ΔS>0).
[tex]\Delta G=\Delta H-T\Delta S[/tex]
[tex]\Delta G=(+ve)-T(+ve)[/tex]
[tex]\Delta G=(+ve)[/tex] (at low temperature) (non-spontaneous)
[tex]\Delta G=(-ve)[/tex] (at high temperature) (spontaneous)
The reaction is spontaneous as written above a certain temperature.
(C) ΔH is negative or (ΔH<0) and ΔS is positive or (ΔS>0).
[tex]\Delta G=\Delta H-T\Delta S[/tex]
[tex]\Delta G=(-ve)-T(+ve)[/tex]
[tex]\Delta G=(-ve)[/tex]
The reaction is spontaneous as written at all temperatures
(D) ΔH is negative or (ΔH<0) and ΔS is negative or (ΔS<0).
[tex]\Delta G=\Delta H-T\Delta S[/tex]
[tex]\Delta G=(-ve)-T(-ve)[/tex]
[tex]\Delta G=(+ve)[/tex] (at high temperature) (non-spontaneous)
[tex]\Delta G=(-ve)[/tex] (at low temperature) (spontaneous)
The reaction is spontaneous as written below a certain temperature.
From this we conclude that, the condition ΔH is positive or (ΔH>0) and ΔS is positive or (ΔS>0) at increase in temperature turn a nonspontaneous process into a spontaneous process.
Hence, the correct option is, ΔH > 0, ΔS > 0
