Answer:
ΔS = 7.618 J/K
Explanation:
The entropy change associated to an isothermal process is:
ΔS = [tex]\frac{Q}{T}[/tex]
We can calculate Q (heat) how:
Q = nRTln([tex]\frac{Vf}{Vi}[/tex])
Where Vf = 2.5v
Vi = v
R = 8.314J/mol.k (Constant of ideal gases)
n: Number of moles = 1 mol
Then
Q = nRTln(2.5)
ΔS = [tex]\frac{nRTln(2.5)}{T}[/tex]
ΔS = (1)(8.314)ln(2.5)
ΔS = 7.618 J/K
