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Chemistry

5: Colligative Properties

5: अणुसंख्यात्मक गुणधर्म

In Class 12 Chemistry, Chapter 01: Solutions, this topic introduces colligative properties—properties that depend on the number of dissolved solute particles rather than their chemical identity. Students learn relative lowering of vapour pressure, elevation of boiling point, depression of freezing point, and osmotic pressure for dilute solutions. The topic also develops relationships involving molality, concentration, molar mass, and the van’t Hoff factor, helping students understand the behaviour of electrolytes and the calculation of abnormal molar masses.

Practice questions

01 For two non-electrolyte solutions having the same molality, which solution will show the greater depression in freezing point?

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02 What happens to osmotic pressure when the number of particles in solution increases?

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03 In abnormal molecular mass calculations, which property is directly related to number of solute particles?

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04 How is the van’t Hoff factor used in colligative properties?

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05 Colligative properties depend primarily on which factor?

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06 The concept of abnormal molar mass is most closely related to which type of properties?

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07 Which statement is correct for colligative properties and abnormal molecular mass?

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08 What is the effect of dissociation on depression in freezing point?

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09 What happens to elevation in boiling point due to association?

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10 If the measured depression in freezing point is double the expected value, what is i?

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11 If the measured elevation in boiling point is 0.75 times the expected value, what is i?

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12 Which factor is included in colligative-property formulas for an abnormal solution?

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13 If the measured depression in freezing point is 1.5 times the expected value, what is the van’t Hoff factor (i)?

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14 If measured osmotic pressure is half the expected value, what is the value of i?

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15 Among solutions of equal molality, which gives the maximum depression in freezing point if dissociation is complete?

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16 A colligative property doubles while the masses of solute and solvent remain the same. What is the most likely reason?

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17 At the same molality, which solution gives the lowest osmotic pressure near the ideal limiting case?

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18 Which statement gives the correct relation between i and particle number?

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19 If 0.02 mol of AB₂ dissociates completely, how many moles of effective particles are formed?

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20 If a solute has i = 1.6, how will its osmotic pressure compare with that of a normal solute of the same molality?

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21 If i = 0.8 and the substance undergoes only dimerisation, how will its boiling-point elevation compare with that of a normal solute at the same molality?

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22 If a solute has i = 0.9, how will its boiling-point elevation compare with that of a normal solute of the same molality?

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23 If KCl is 75% dissociated, how many times is its osmotic pressure compared with glucose at the same concentration?

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24 If a solute has i = 1.25, how much higher will its colligative effect be than the normal value?

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