2SO\(_2\)\(_{(s)}\) + O\(_2\)\(_{(s)}\) ⇌ 2SO\(_3\) ; ΔG° = - ve
For the above reaction to be feasible
a
ΔH = + ve ,ΔS = + ve
b
ΔH = 0 ,ΔS = + ve
c
ΔH = + ve ,ΔS = - ve
d
ΔS = 0
Explanation
Correct Option
aVideo Explanation
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Discussions (4)
Lord_Morgan
3 months ago
no correct option actually.
maybe due to typographical error.
∆H = -ve , ∆s = -ve
why?
checking the reaction
reactants have 3 moles of gas, product has 2
so entropy has decreased
∆s = -ve
from
∆G = ∆H - T∆S
the only way to get a negative ∆G
is if ∆H is negative and high enough to counter the T∆S
FGCO195928
3 months ago
it's either A or B, but I think the ∆H can't be 0 because that means the temperature of the reaction is 0 and can a reaction take place at 0K abi 0°C
