Answer:
0.3097 moles of an nonionizing solute would need to be added.
Explanation:
Molal elevation constant = [tex]k_b=1.22^oC/m[/tex]
Normal boiling point of ethanol = [tex]T_o=78.4^oC[/tex]
Boiling of solution =[tex]T_b=86.30^oC[/tex]
Moles of nonionizing solute = n
Mass of ethanol (solvent) = 47.84 g
Elevation boiling point:
[tex]\Delta T_b=T_b-T_o[/tex]
[tex]\Delta T_b=86.30^oC-78.4^oC=7.9^oC[/tex]
[tex]\Delta T_b=K_b\times m[/tex]
[tex]m=\frac{\text{Moloes of solute}}{\text{Mass of solvent(kg)}}[/tex]
[tex]7.9^oC=1.22^oC/m\times \frac{n}{0.04784 kg}[/tex]
n = 0.3097 mol
0.3097 moles of an nonionizing solute would need to be added.
