`15.0 g` of an unknown molecular material was dissolved in `450 g` of water. The resulting solution was found to freeze at `-0.34 ^(@)C`. What is the the molar mass of this material. (`K_(f)` for water `= 1.86 K kg mol^(-1)`)

`15.0 g` of an unknown molecular material was dissolved in `450 g` of

1.	`15.0 g` of an unknown molecular material was dissolved in `450 g` of water. The resulting solution was found to freeze at `-0.34 ^(@)C`. What is the the molar mass of this material. (`K_(f)` for water `= 1.86 K kg mol^(-1)`)
Answer» Here ` w^(2) = 15 g, w_(1) = 450 g, K_(f) = 1.86" K kg "mol^(-1)` ` M_(2) `=? `DeltaT_(f) = 0 - (-0.34) = 0.34^(@)C or 0.34" K "` Using the formula, `Delta T_(f) = K_(f) m = K_(f) xx (w_(2) xx 1000)/ (M_(2) xx w_(1))` ` 0.34 = (1.86 xx 15 xx 1000)/(M_(2) xx 450)` ` :. " " M_(2) = (1.86 xx 15xx 1000)/(0.34 xx 450) = (186 xx 100)/(34 xx 3)` ` = (18600)/102 = 182.35" g "mol^(-1)`

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`15.0 g` of an unknown molecular material was dissolved in `450 g` of water. The resulting solution was found to freeze at `-0.34 ^(@)C`. What is the the molar mass of this material. (`K_(f)` for water `= 1.86 K kg mol^(-1)`)

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