Answer : The solubility is, [tex]1.4\times 10^{-5}mol/L[/tex]
Explanation : Given,
[tex]k_H[/tex] = Henry's law constant of argon = [tex]1.5\times 10^{-3}mol/L.atm[/tex]
First we have to calculate the pressure of argon.
Pressure of argon = [tex]1.0atm\times \frac{0.93}{100}[/tex]
Pressure of argon = 0.0093 atm
Now we have to calculate the solubility.
As, the solubility of argon in 1 atm pressure = [tex]1.5\times 10^{-3}mol/L[/tex]
So, the solubility of argon in 0.0093 atm pressure = [tex]\frac{0.0093atm}{1atm}\times 1.5\times 10^{-3}mol/L[/tex]
= [tex]1.4\times 10^{-5}mol/L[/tex]
Thus, the solubility is, [tex]1.4\times 10^{-5}mol/L[/tex]
