Answer:
The molality of isoborneol in camphor is 0.53 mol/kg.
Explanation:
Melting point of pure camphor= T =179°C
Melting point of sample = [tex]T_f[/tex] = 165°C
Depression in freezing point = [tex]\Delta T_f=?[/tex]
[tex]\Delta T_f=T- T_f=179^oC-165^oC=14^oC[/tex]
Depression in freezing point is also given by formula:
[tex]\Delta T_f=i\times K_f\times m[/tex]
[tex]K_f[/tex] = The freezing point depression constant
m = molality of the sample
i = van't Hoff factor
We have: [tex]K_f[/tex] = 40°C kg/mol
i = 1 ( organic compounds)
[tex]\Delta T_f=14^oC[/tex]
[tex]14^oC=1\times 40^oC kg/mol\times m[/tex]
[tex]m=\frac{14^oC}{1\times 40^oC kg/mol}=0.35 mol/kg[/tex]
The molality of isoborneol in camphor is 0.53 mol/kg.
