The freezing point of a solution containing 2.40 g of a compound in 60.0g of benzene is `0.10^(@)"C"` lower than that of pure benzene. What is the molecular weight of the compound?`("K"_("f")" is " 5.12^(@)"C"//"m for benzene"`

The freezing point of a solution containing 2.40 g of a compound in 60

1.	The freezing point of a solution containing 2.40 g of a compound in 60.0g of benzene is `0.10^(@)"C"` lower than that of pure benzene. What is the molecular weight of the compound?`("K"_("f")" is " 5.12^(@)"C"//"m for benzene"`
Answer» Correct Answer - `"2048 g/mol"` Solute-B ,Solvent-A `Delta"T"_("f")=("K"_("f")xx"w"_("B")xx1000)/("m"_("B")xx"w"_("A"))` `0.10=(5.12xx2.40xx1000)/("m"_(B")xx60)` `"m"_("B")=2048"gm mol"^(-1)`

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The freezing point of a solution containing 2.40 g of a compound in 60.0g of benzene is `0.10^(@)"C"` lower than that of pure benzene. What is the molecular weight of the compound?`("K"_("f")" is " 5.12^(@)"C"//"m for benzene"`

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