MCQEasyJEE 2026Concentration Terms (Molarity, Molality, etc.)

JEE Chemistry 2026 Question with Solution

At TT K, 100g100 \, g of 98%98\% H2SO4H_2SO_4 (w/w) aqueous solution is mixed with 100g100 \, g of 49%49\% H2SO4H_2SO_4 (w/w) aqueous solution. What is the mole fraction of H2SO4H_2SO_4 in the resultant solution? (Given: Atomic mass H=1u,  S=32u,  O=16uH = 1 \, u,\; S = 32 \, u,\; O = 16 \, u. Assume that temperature after mixing remains constant.)

  • A

    0.3370.337

  • B

    0.10.1

  • C

    0.90.9

  • D

    0.6630.663

Answer

Correct answer:A

Step-by-step solution

Standard Method

Given: 100g100 \, g of 98%98\% H2SO4H_2SO_4 solution is mixed with 100g100 \, g of 49%49\% H2SO4H_2SO_4 solution.

Find: Mole fraction of H2SO4H_2SO_4 in the resultant solution.

Step 1: Calculate masses of H2SO4H_2SO_4 and water.

From 100g100 \, \text{g} of 98%98\% solution:

Mass of H2SO4=98g,Mass of H2O=2g\text{Mass of } H_2SO_4 = 98 \, \text{g}, \quad \text{Mass of } H_2O = 2 \, \text{g}

From 100g100 \, \text{g} of 49%49\% solution:

Mass of H2SO4=49g,Mass of H2O=51g\text{Mass of } H_2SO_4 = 49 \, \text{g}, \quad \text{Mass of } H_2O = 51 \, \text{g}

Step 2: Total masses after mixing.

Total H2SO4=98+49=147g\text{Total } H_2SO_4 = 98 + 49 = 147 \, \text{g} Total H2O=2+51=53g\text{Total } H_2O = 2 + 51 = 53 \, \text{g}

Step 3: Convert masses into moles. Molar mass of H2SO4=98g mol1H_2SO_4 = 98 \, \text{g mol}^{-1},

n(H2SO4)=14798=1.5moln(H_2SO_4) = \frac{147}{98} = 1.5 \, \text{mol}

Molar mass of H2O=18g mol1H_2O = 18 \, \text{g mol}^{-1},

n(H2O)=53182.94moln(H_2O) = \frac{53}{18} \approx 2.94 \, \text{mol}

Step 4: Calculate mole fraction of H2SO4H_2SO_4.

XH2SO4=1.51.5+2.94=1.54.440.337X_{H_2SO_4} = \frac{1.5}{1.5 + 2.94} = \frac{1.5}{4.44} \approx 0.337

Therefore, the mole fraction of H2SO4H_2SO_4 is 0.3370.337. The correct option is A.

Common mistakes

  • Using percentage values directly as mole fractions is incorrect because 98%98\% and 49%49\% are mass percentages, not mole fractions. First convert each percentage into actual masses of H2SO4H_2SO_4 and H2OH_2O.

  • Adding solution percentages to get the final concentration is wrong because mixing must be handled through total masses of solute and solvent. Compute total mass of H2SO4H_2SO_4 and total mass of H2OH_2O after mixing.

  • Forgetting to include water in the denominator of mole fraction gives an incorrect result. Mole fraction of H2SO4H_2SO_4 is n(H2SO4)n(H2SO4)+n(H2O)\frac{n(H_2SO_4)}{n(H_2SO_4)+n(H_2O)}, not just moles of acid alone.

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