Answer : The percent by volume of oxygen gas in the mixture is, 5.3 %
Explanation :
According to the Raoult's law,
[tex]p^o_A=X_A\times p_A[/tex]
where,
[tex]p_A[/tex] = total partial pressure of solution = 3.8 atm
[tex]p^o_A[/tex] = partial pressure of oxygen = 0.20 atm
[tex]X_A[/tex] = mole fraction of oxygen = ?
Now put all the given values in this formula, we get:
[tex]p^o_A=X_A\times p_A[/tex]
[tex]0.20atm=X_A\times 3.8atm[/tex]
[tex]X_A=0.0526[/tex]
Now we have to calculate the percent by volume of oxygen gas in the mixture.
The mole percent of oxygen gas = [tex]0.0526\times 100=5.3\%[/tex]
As we know that, there is a direct relation between the volume of moles.
So, mole percent of oxygen gas = volume percent of oxygen gas
Volume percent of oxygen gas = [tex]0.0526\times 100=5.3\%[/tex]
Therefore, the percent by volume of oxygen gas in the mixture is, 5.3 %
