MCQMediumJEE 2026Colligative Properties

JEE Chemistry 2026 Question with Solution

Elements P and Q form two types of non-volatile, non-ionizable compounds PQ and PQ₂. When 1g1 \, \text{g} of PQ is dissolved in 50g50 \, \text{g} of solvent 'A', ΔTb\Delta T_b was 1.176K1.176 \, \text{K} while when 1g1 \, \text{g} of PQ₂ is dissolved in 50g50 \, \text{g} of solvent 'A', ΔTb\Delta T_b was 0.689K0.689 \, \text{K}. (KbK_b of 'A' = 5K kg mol15 \, \text{K kg mol}^{-1}). The molar masses of elements P and Q (in g mol1\text{g mol}^{-1}) respectively, are:

  • A

    7070, 110110

  • B

    6060, 2525

  • C

    2525, 6060

  • D

    6565, 145145

Answer

Correct answer:C

Step-by-step solution

Standard Method

Given:

  • Compound PQ gives ΔTb=1.176K\Delta T_b = 1.176 \, \text{K}
  • Compound PQ₂ gives ΔTb=0.689K\Delta T_b = 0.689 \, \text{K}
  • Mass of solute in each case = 1g1 \, \text{g}
  • Mass of solvent = 50g=0.050kg50 \, \text{g} = 0.050 \, \text{kg}
  • Kb=5K kg mol1K_b = 5 \, \text{K kg mol}^{-1}

Find: Atomic masses of elements P and Q.

For a non-volatile, non-ionizable solute,

ΔTb=Kbm\Delta T_b = K_b m

and

m=mass of solute/Mmass of solvent in kgm = \frac{\text{mass of solute}/M}{\text{mass of solvent in kg}}

So,

M=Kb×mass of soluteΔTb×mass of solvent in kgM = \frac{K_b \times \text{mass of solute}}{\Delta T_b \times \text{mass of solvent in kg}}

For PQ,

MPQ=5×11.176×0.050=50.058885.03g mol1M_{PQ} = \frac{5 \times 1}{1.176 \times 0.050} = \frac{5}{0.0588} \approx 85.03 \, \text{g mol}^{-1}

For PQ₂,

MPQ2=5×10.689×0.050=50.03445145.14g mol1M_{PQ_2} = \frac{5 \times 1}{0.689 \times 0.050} = \frac{5}{0.03445} \approx 145.14 \, \text{g mol}^{-1}

Let atomic masses be MPM_P and MQM_Q. Then,

MP+MQ=85.03M_P + M_Q = 85.03 MP+2MQ=145.14M_P + 2M_Q = 145.14

Subtracting the first equation from the second,

MQ=145.1485.03=60.11g mol1M_Q = 145.14 - 85.03 = 60.11 \, \text{g mol}^{-1}

So,

MQ60g mol1M_Q \approx 60 \, \text{g mol}^{-1}

Now substitute into the first equation:

MP=85.0360.11=24.92g mol1M_P = 85.03 - 60.11 = 24.92 \, \text{g mol}^{-1}

Thus,

MP25g mol1M_P \approx 25 \, \text{g mol}^{-1}

Therefore, the atomic masses of P and Q are 2525 and 6060 respectively. The correct option is C.

Common mistakes

  • Using the mass of solvent as 50kg50 \, \text{kg} or 50g50 \, \text{g} directly in the molality formula is incorrect because KbK_b is given per kilogram of solvent. Convert 50g50 \, \text{g} to 0.050kg0.050 \, \text{kg} before substitution.

  • Treating PQ and PQ₂ as ionizable species is incorrect because the question explicitly states they are non-ionizable. Therefore, no van't Hoff factor is used; take i=1i = 1.

  • Interchanging the identities of P and Q after solving the linear equations leads to the reversed pair 60,2560, 25. From MP+MQ=85.03M_P + M_Q = 85.03 and MP+2MQ=145.14M_P + 2M_Q = 145.14, the extra Q in PQ₂ means the difference gives the mass of Q first.

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