NVAEasyJEE 2023Concentration Terms (Molarity, Molality, etc.)

JEE Chemistry 2023 Question with Solution

The density of 3M3 \, \text{M} solution of NaCl is 1.0g mL11.0 \, \text{g mL}^{-1}. Molality of the solution is _____ ×102\times 10^{-2} m. (Nearest integer)

Given: Molar mass of Na and Cl is 2323 and 35.5g mol135.5 \, \text{g mol}^{-1} respectively.

Answer

Correct answer:364

Step-by-step solution

Standard Method

Given: Molarity of NaCl solution is 3M3 \, \text{M}, density is 1.0g mL11.0 \, \text{g mL}^{-1}, and molar mass of NaCl is

23+35.5=58.5g mol123 + 35.5 = 58.5 \, \text{g mol}^{-1}

Find: Molality in the form _____×102m\_\_\_\_\_ \times 10^{-2} \, \text{m}.

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

1.0g mL1×1000mL=1000g1.0 \, \text{g mL}^{-1} \times 1000 \, \text{mL} = 1000 \, \text{g}

Since the solution is 3M3 \, \text{M}, moles of NaCl in 1L1 \, \text{L} are

3mol3 \, \text{mol}

Mass of solute is

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

Mass of solvent is

1000175.5=824.5g=0.8245kg1000 - 175.5 = 824.5 \, \text{g} = 0.8245 \, \text{kg}

Now, molality is

m=30.8245=3.64mm = \frac{3}{0.8245} = 3.64 \, \text{m}

Writing this as ×102\times 10^{-2},

3.64=364×1023.64 = 364 \times 10^{-2}

Therefore, the required nearest integer is 364364.

Direct Formula Method

Given: M=3M = 3, density d=1.0g mL1d = 1.0 \, \text{g mL}^{-1}, molar mass of solute =58.5g mol1= 58.5 \, \text{g mol}^{-1}.

A direct relation between molarity and molality is

m=1000M1000dM×molar mass of solutem = \frac{1000M}{1000d - M \times \text{molar mass of solute}}

Substituting the given values,

m=1000×31000×13×58.5m = \frac{1000 \times 3}{1000 \times 1 - 3 \times 58.5} m=3000824.5=3.64m = \frac{3000}{824.5} = 3.64

Hence,

m=364×102m = 364 \times 10^{-2}

So, the correct numerical answer is 364364.

Common mistakes

  • Using molarity directly as molality is incorrect because molarity is based on volume of solution, while molality is based on mass of solvent. First convert the given data to mass of solvent.

  • Subtracting the mass of solute from 1kg1 \, \text{kg} instead of from the mass of 1L1 \, \text{L} of solution can be wrong in general. Here the density must first be used to find the mass of 1L1 \, \text{L} solution.

  • Using the wrong molar mass of NaCl leads to an incorrect solvent mass. Add Na = 2323 and Cl = 35.535.5 to get 58.5g mol158.5 \, \text{g mol}^{-1}.

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