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Subjects

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 If two non-electrolyte solutes of equal molality are dissolved separately in the same solvent, how will their boiling point elevation compare?

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02 Why is the boiling point of a solution higher than that of the pure solvent?

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03 What is the reason for depression in freezing point?

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04 Why does a non-electrolyte solute of lower molar mass show a larger effect for the same mass?

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05 If a solute has i = 2, how will its colligative effect compare with an ideal non-electrolyte?

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06 At the same molality, which solution may show greater freezing point depression?

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07 If ΔT_b = 2 and K_b = 1, what is the molality?

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08 If \(\Delta T_f = 3.6\) and \(K_f = 1.8\), what is the molality of the solution?

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09 Between aqueous glucose and NaCl solutions of equal molality, if NaCl ionises completely, which solution will show a greater elevation in boiling point?

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10 Which relation is correct for elevation in boiling point?

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11 If two solutions are prepared in the same solvent, have the same molality, and their solutes do not dissociate, how will their depressions in freezing point compare?

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12 If equal moles of glucose and salt are separately dissolved in equal amounts of water, which solution shows a greater colligative effect?

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13 Which solution will have the lowest freezing point if all have the same molality and complete dissociation is assumed?

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14 For solutions of non-dissociating solutes with the same molality, how will the boiling point elevation compare?

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15 Which simple relation is used for osmotic pressure of a dilute solution?

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16 What generally happens to osmotic pressure when temperature increases, keeping other quantities constant?

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17 Relative lowering of vapour pressure is related to what?

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18 At equal molality, how will the colligative effects of non-electrolyte solutions like sugar and urea compare?

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19 If ΔT_b = 1.5 and K_b = 0.5, what is the molality?

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20 If ΔT_f = 0.9 and K_f = 1.8, what is the molality?

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21 If the number of solute particles doubles in the same solvent, how will the colligative effect generally change?

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22 What is a common mistake while solving colligative property questions?

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23 If two non-electrolyte solutions have the same molality but different solvents, will ΔTb be the same?

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24 If a solution has a much lower freezing point than the pure solvent, which conclusion may be correct?

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25 A solution has ΔTf = 1.86 K, Kf = 1.86 K kg mol⁻¹, and molality m = 0.5 mol kg⁻¹. What is the van’t Hoff factor i?

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