Addition of 0.643 g of a compound to 50 mL of benzene (density 0.679 h – InterviewSolution

1.	Addition of 0.643 g of a compound to 50 mL of benzene (density 0.679 h/mL) lower the freezing point from 5.51^(@)C to 5.03^(@)C. If K_(f)=5.12 km^(-1), calculate the molecular mass of the compound.
Answer» Solution :`W_(B)=0.643g, W_(A)=(50 mL)XX(0.879" g mL"^(-1))=43.95g=0.04395 kg` `Deltat_(F)=5.51-5.03=0.48^(@)C=0.48 K, K_(f)=5.12" K kg mol"^(-1)` `M_(B)=(W_(B)xxK_(f))/(DeltaT_(f)xxW_(A))=((5.12" g kg mol"^(-1))xx(0.643g))/((0.48 K)xx(0.04395 kg))=156" g mol"^(-1)`

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