MCQEasyJEE 2025Concentration Terms (Molarity, Molality, etc.)

JEE Chemistry 2025 Question with Solution

Density of 3M3 \, \text{M} NaCl solution is 1.25g/mL1.25 \, \text{g/mL}. The molality of the solution is:

  • A

    2.79m2.79 \, \text{m}

  • B

    1.79m1.79 \, \text{m}

  • C

    3m3 \, \text{m}

  • D

    2m2 \, \text{m}

Answer

Correct answer:A

Step-by-step solution

Standard Method

Given: Molarity of NaCl solution is 3M3 \, \text{M} and density is 1.25g/mL1.25 \, \text{g/mL}.

Find: Molality of the solution.

Take 1L1 \, \text{L} of solution.

From molarity, moles of NaCl in 1L1 \, \text{L} solution are 33.

Mass of 1L1 \, \text{L} solution:

1.25g/mL×1000mL=1250g1.25 \, \text{g/mL} \times 1000 \, \text{mL} = 1250 \, \text{g}

Mass of NaCl:

3×58.44=175.32g3 \times 58.44 = 175.32 \, \text{g}

Mass of solvent:

1250175.32=1074.68g=1.07468kg1250 - 175.32 = 1074.68 \, \text{g} = 1.07468 \, \text{kg}

Now molality is:

m=31.07468=2.79mm = \frac{3}{1.07468} = 2.79 \, \text{m}

Therefore, the molality is 2.79m2.79 \, \text{m} and the correct option is A.

The solution also lists option C in one place, but the numerical working clearly gives 2.79m2.79 \, \text{m}.

Using definition of molality

Given: Molality is defined as moles of solute per kilogram of solvent.

Find: The molality corresponding to a 3M3 \, \text{M} NaCl solution of density 1.25g/mL1.25 \, \text{g/mL}.

For 1L1 \, \text{L} solution, total mass is:

1250g1250 \, \text{g}

Moles of NaCl present are:

3mol3 \, \text{mol}

Using molar mass of NaCl as approximately 58.5g/mol58.5 \, \text{g/mol}, mass of solute is:

3×58.5=175.5g3 \times 58.5 = 175.5 \, \text{g}

So mass of solvent is:

1250175.5=1074.5g=1.0745kg1250 - 175.5 = 1074.5 \, \text{g} = 1.0745 \, \text{kg}

Hence,

m=31.07452.79mm = \frac{3}{1.0745} \approx 2.79 \, \text{m}

Therefore, the molality is 2.79m2.79 \, \text{m}.

Common mistakes

  • Using molarity directly as molality is incorrect because molarity is based on volume of solution, whereas molality is based on mass of solvent. First find the mass of solvent, then compute molality.

  • Taking 1250g1250 \, \text{g} as the mass of solvent is wrong because it is the mass of the entire solution. Subtract the mass of NaCl from the total mass to get the solvent mass.

  • Forgetting to convert grams of solvent into kilograms gives an incorrect numerical value. Molality must be calculated using kilograms of solvent.

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