Consider a hypothetical case where a compound “A” is dissolved in water in equimolar ratio and formed a solution of average molar mass 100 g/mol. If same compound “A” formed 18.2% (w/v) solution with another solvent X then molarity of solution (A with X) would be equal to:

0.001 M

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1 M

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0.01 M

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0.1 M

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Solution

The correct option is B 1 M
Let the molar mass of compound A be $M_{A}$ g
Case 1:
Both solute A and solvent are present in equimolar ratio. So, mole fraction of each will be 0.5
$Average molar mass=mole fraction of solute×molar mass of solute)+(mole fraction of solvent×molar mass of solvent)$
$100 = 0.5 \times M_{A} + 0.5 \times 18$
On solving, $M_{A} = 182 g / m o l$
Case 2:
18.2% (w/v) means, 18.2 g of solute is present in 100 mL of solution.
Moles of A in 100 mL solution $= \frac{18.2}{182} = 0.1 m o l$
$M o l a r i t y o f s o l u t i o n = \frac{m o l e s o f s o l u t e}{v o l u m e o f s o l u t i o n i n m L} \times 1000$
$M o l a r i t y = \frac{0.1}{100} \times 1000 = 1 M$

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