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

JEE Chemistry 2023 Question with Solution

The molality of a 10%10\% (v/v)\text{(v/v)} solution of di-bromine solution in CCl_4 (carbon tetrachloride) is 'x'. x = _____ \times 10^{-2} , \text{M}. (Nearest integer)

Given:

Molar mass of Br_2 = 160g mol1160 \, \text{g mol}^{-1} Atomic mass of C = 12g mol112 \, \text{g mol}^{-1} Atomic mass of Cl = 35.5g mol135.5 \, \text{g mol}^{-1} Density of dibromine = 3.2g cm33.2 \, \text{g cm}^{-3} Density of CCl_4 = 1.6g cm31.6 \, \text{g cm}^{-3}

Answer

Correct answer:139

Step-by-step solution

Standard Method

Given: A 10%10\% (v/v)\text{(v/v)} solution of Br_2 in CCl_4.

Find: The value of xx in x×102x \times 10^{-2}.

Assume 100mL100 \, \text{mL} of solution. Then volume of Br2Br_2 is 10mL10 \, \text{mL} and volume of CCl4CCl_4 is 90mL90 \, \text{mL}.

Step 1: Calculate the mass of Br2Br_2

Mass of Br2=Volume×Density=10mL×3.2g/mL=32g\text{Mass of } Br_2 = \text{Volume} \times \text{Density} = 10 \, \text{mL} \times 3.2 \, \text{g/mL} = 32 \, \text{g} Moles of Br2=MassMolar Mass=32g160g/mol=0.2mol\text{Moles of } Br_2 = \frac{\text{Mass}}{\text{Molar Mass}} = \frac{32 \, \text{g}}{160 \, \text{g/mol}} = 0.2 \, \text{mol}

Step 2: Calculate the mass of CCl4CCl_4

Mass of CCl4=Volume×Density=90mL×1.6g/mL=144g\text{Mass of } CCl_4 = \text{Volume} \times \text{Density} = 90 \, \text{mL} \times 1.6 \, \text{g/mL} = 144 \, \text{g} Molar mass of CCl4=12+(4×35.5)=12+142=154g/mol\text{Molar mass of } CCl_4 = 12 + (4 \times 35.5) = 12 + 142 = 154 \, \text{g/mol}

Step 3: Calculate the molality

Molality (m)=Moles of soluteMass of solvent (in kg)\text{Molality } (m) = \frac{\text{Moles of solute}}{\text{Mass of solvent (in kg)}} m=0.2mol144g/1000g/kg=0.2mol0.144kg=1.3888mol/kgm = \frac{0.2 \, \text{mol}}{144 \, \text{g} / 1000 \, \text{g/kg}} = \frac{0.2 \, \text{mol}}{0.144 \, \text{kg}} = 1.3888 \, \text{mol/kg} m1.39mol/kgm \approx 1.39 \, \text{mol/kg}

So,

x=139x = 139

Therefore, the final answer is 139139.

Using 100 mL Basis

Given: 10%10\% (v/v)\text{(v/v)} means 10mL10 \, \text{mL} solute per 100mL100 \, \text{mL} solution.

Find: Convert the computed molality into the form x×102x \times 10^{-2}.

Take 100mL100 \, \text{mL} solution.

  • Br2Br_2 volume = 10mL10 \, \text{mL}
  • CCl4CCl_4 volume = 90mL90 \, \text{mL}

Using the given densities:

Mass of Br2=10×3.2=32g\text{Mass of } Br_2 = 10 \times 3.2 = 32 \, \text{g} Mass of CCl4=90×1.6=144g\text{Mass of } CCl_4 = 90 \times 1.6 = 144 \, \text{g}

Now calculate moles of Br2Br_2:

Moles of Br2=32160=0.2\text{Moles of } Br_2 = \frac{32}{160} = 0.2

Convert solvent mass into kilograms:

144g=0.144kg144 \, \text{g} = 0.144 \, \text{kg}

Then molality is

m=0.20.144=1.38881.39m = \frac{0.2}{0.144} = 1.3888 \approx 1.39

This is 1.39=139×1021.39 = 139 \times 10^{-2}.

Therefore, x=139x = 139.

Common mistakes

  • Taking 10%10\% (v/v)\text{(v/v)} as 10g10 \, \text{g} of Br2Br_2 instead of 10mL10 \, \text{mL} is incorrect because volume percent is defined using volumes. First convert volume to mass using density.

  • Using total solution mass instead of solvent mass in the molality formula is wrong because molality is moles of solute per kilogram of solvent, not per kilogram of solution. Use only the mass of CCl4CCl_4.

  • Forgetting to convert 144g144 \, \text{g} of solvent into 0.144kg0.144 \, \text{kg} gives an answer off by a factor of 10001000. Always express solvent mass in kilograms for molality.

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