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Question

The mole fraction of urea in an aqueous urea solution containing 900 g of water is 0.05. If the density of the solution is 1.2 g cm3, the molarity of urea solution is______
(Given data: Molar masses of urea and water are 60 g mol1 and 18 g mol1, respectively.)

A
2.98 M
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B
1.98 M
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C
1.06 M
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D
3.98 M
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Solution

The correct option is A 2.98 M
Let, mole of urea = x
According to the question,
xx+90018=0.05
x=5019

We know,
Mass of solution = mass of solute + mass of solvent
=5019×60+900=2010019

Again, density = mass/volume
So,
Volume of solution =2010019×1.2 mL

=20.119×1.2 L

Therefore, Molarity = molesvolume(L) =501920.119×1.2
=6020.1 = 2.98 M

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