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Subjects

Chemistry

5: Colligative Properties

समष्टिगत गुणधर्म

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how the physical properties of a solution depend on the number of dissolved solute particles rather than their chemical identity. The topic explains lowering of vapour pressure, elevation of boiling point, depression of freezing point and osmotic pressure. Students also apply colligative-property equations to calculate molar mass, understand dilute solutions, and use the van’t Hoff factor to interpret association or dissociation of solute particles.

Practice questions

01 Why does ice appear to melt faster when salt is sprinkled on it?

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02 A solution contains 0.5 mol of solute dissolved in 1 kg of solvent. What is its molality?

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03 If Kf and molality are known, how is the depression in freezing point found for a non-dissociating solute?

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04 If the mole fraction of solute in a solution is very small, how will the relative lowering of vapour pressure be?

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05 When abnormal molar mass is obtained, which correction is included in colligative property formulas?

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06 Among aqueous solutions of equal molality, assuming complete ionisation, which solute solution will show the greatest depression in freezing point?

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07 Among aqueous solutions of equal molality, assuming complete ionisation, which solute will produce the greatest depression in freezing point?

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08 In a dilute solution, the mole fraction of solute is 0.04. Assuming a non-volatile solute, what is the relative lowering of vapour pressure?

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09 Which of the following equimolal solutions will have the highest freezing point, assuming ideal behaviour?

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10 Which change is most likely when solute association occurs in a solution?

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11 Why does the boiling point of a solution increase when a non-volatile solute is added?

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12 Which property depends only on the number of solute particles present in a solution and not on the chemical nature of the solute?

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13 Among aqueous solutions of equal molality, assuming complete dissociation, which solute will have the highest van’t Hoff factor?

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14 Why does a red blood cell generally retain its size when placed in an isotonic solution?

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15 Which statement is correct about the depression of the freezing point of a solution?

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16 If the vapour pressure of a solution is p and that of the pure solvent is p⁰, what is the relative lowering of vapour pressure?

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17 When the molality of a solute is increased in a solution, with all other conditions unchanged, what happens to the elevation in boiling point?

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18 What is the effective molar concentration of particles in a 0.1 M K₃PO₄ solution on complete dissociation?

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19 A solution and a pure solvent are separated by a semipermeable membrane. During initial osmosis, toward which side will the solvent move?

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20 What happens to the vapour pressure of the solvent when the amount of a non-volatile solute in a solution is increased?

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21 If the ebullioscopic constant K_b is larger, how will the elevation in boiling point behave for the same molality and the same van’t Hoff factor i?

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22 A solution has a solute mole fraction of 0.08. Assuming that the solute is non-volatile, what is the relative lowering of vapour pressure?

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23 Due to the salts dissolved in seawater, which statement is correct compared with pure water?

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24 Which of the following statements about elevation in boiling point is correct?

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25 Which of the following properties depends on the number of solute particles present in a solution rather than on the chemical nature of the solute?

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