Answer:
[tex]m=0.512m[/tex]
Explanation:
Hello,
In this case, we can consider the n-propanol as the solute (lower amount) and the t-butanol as the solvent (higher amount), for which, initially, we must compute the moles of n-propanol (molar mass = 60.1 g/mol) as shown below:
[tex]n_{solute}=0.400g*\frac{1mol}{60.1g0}=6.656x10^{-3}mol[/tex]
Since the molality is computed via:
[tex]m=\frac{n_{solute}}{m_{solvent}}[/tex]
Whereas the mass of the solvent is used in kilograms (0.0130g for the given one). Thus, we compute the resulting molality of the solution:
[tex]m=\frac{6.656x10^{-3}mol}{0.0130kg}\\ \\m=0.512\frac{mol}{kg}[/tex]
Or just:
[tex]m=0.512m[/tex]
Best regards.
