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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 Which of the following colligative properties is not directly applicable to a solution containing a volatile solute?

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02 Why does solvent flow opposite to the normal direction during reverse osmosis?

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03 In an ideal dilute solution containing a non-volatile solute, which relation represents the relative lowering of vapour pressure?

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04 If glucose, sodium chloride, and aluminium chloride are dissolved in three solutions of equal molality, what is the correct order of freezing-point depression under ideal conditions?

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05 The osmotic pressure of a solution is π at 300 K. If the concentration is kept constant and the temperature is raised to 600 K, what will be the ideal osmotic pressure?

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06 If a 0.2 m urea solution has a freezing-point depression x, what will be the approximate freezing-point depression of an ideal 0.2 m calcium chloride solution?

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07 A non-volatile solute lowers the freezing point of a pure solvent. What is the microscopic reason?

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08 One mole of A₂B dissociates completely into 2A⁺ and B²⁻. What is the ideal van’t Hoff factor?

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09 If two solutions are isotonic, which statement is definitely true for them at the same temperature?

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10 For the same solvent at the same temperature, which observation confirms that depression in freezing point is a colligative property?

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11 Why is reverse osmosis useful for obtaining drinking water from seawater?

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12 If an electrolyte effectively produces 3.2 particles instead of the four particles expected from complete dissociation, how will its colligative effect compare with complete dissociation?

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13 A solution has i = 2.5 and molality 0.2 m. If Kf = 1.86 K kg mol⁻¹, what is ΔTf?

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14 For a solute, the van’t Hoff factor (i) is observed to be 0.75. What type of particle change does this indicate?

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15 If 1 mole of solute is dissolved in 500 g of solvent and the van’t Hoff factor is 2, what is the effective molality?

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16 A solution has a relative lowering of vapour pressure of 0.25. If the total number of moles in the solution is 4, how many moles of solute are present?

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17 An electrolyte XY undergoes 30% dissociation. What will be its van’t Hoff factor (i)?

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18 In trimer formation, three molecules associate to form one particle. If association is complete, what is the van’t Hoff factor (i)?

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19 In a benzene solution containing a non-volatile solute, the relative lowering of vapour pressure is less than the value expected for ideal behaviour. What does this indicate?

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20 In which situation is the van’t Hoff factor of a solute expected to be less than 1?

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21 In an ideal solution, only the amount of solute is increased while the amount of solvent remains the same. Which statement is most correct?

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22 Under which condition will a CaCl2 solution show a greater depression in freezing point than an equimolal NaCl solution?

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23 At the same temperature, what is the ratio of the osmotic pressures of 0.1 M urea and 0.1 M completely dissociated K₂SO₄ solutions?

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24 If the elevation in boiling point of a solution is greater than the expected value, which reason is most suitable?

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25 Two equimolal solutions are given. The first contains completely dissociated BaCl₂ and the second contains glucose. What is the ratio of their freezing-point depressions?

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