Answer:
[tex]M=174.87g/mol[/tex]
Explanation:
Hello,
In this case, we consider the depression in the freezing point as:
[tex]\Delta T=-i*m*Kf[/tex]
Whereas the van't hoff factor for ascorbic acid is 1 since it is covalent, thus, we solve for the molality as shown below:
[tex](-2.34-0)\°C=-m*1.86\°C/m\\\\m=\frac{-2.34\°C}{-1.86\°C/m} =1.26m[/tex]
Next, since molal units are mol/kg, we can compute the present moles of ascorbic acid in the 250 g (0.25kg) of water:
[tex]n=1.26mol/kg*0.25kg=0.315mol[/tex]
Finally, the molar mass with the given 55.0 g of ascorbic acid:
[tex]M=\frac{55.0g}{0.315mol}\\ \\M=174.87g/mol[/tex]
Regards.
