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Subjects

Chemistry

7: Abnormal Molecular Mass

असामान्य आणविक द्रव्यमान

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn why the experimentally determined molecular mass of a solute may differ from its expected value. The discussion connects abnormal molecular mass with the association or dissociation of solute particles in solution and explains how these changes affect colligative properties. Students also explore the van’t Hoff factor and use it to interpret and calculate corrected molar masses in solution-based problems.

Practice questions

01 An AB electrolyte is 40% dissociated. From 100 initial formula units, how many effective particles will be present?

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02 A freezing-point depression experiment gives i = 2.7 for an unknown solute. If it is of type AB₂, what is the approximate degree of dissociation?

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03 A solute has i = 1.75. If it dissociates into two ions, what is its apparent molar mass compared with the true molar mass?

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04 A salt M₂X has an apparent molar mass equal to 0.5 times its true molar mass. What is its degree of dissociation?

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05 A colligative property is 25% lower than its normal expected value. If the cause is dimer association, what is the degree of association?

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06 A solute dissociates into two ions and its colligative property is 30% higher than normal. What is the degree of dissociation?

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07 An AX₂ salt is 45% dissociated. From 200 initial formula units, how many effective particles will be present?

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08 If the apparent molar mass of a solute is 2.5 times its true molar mass, what is the van’t Hoff factor and what does it indicate?

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09 The true molar mass of an AB2 salt is 120 g mol−1. If 40% dissociation occurs, what is its apparent molar mass?

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10 A solute undergoes 80% tetramer association. If the normal freezing-point depression is 0.50 K, what is the observed depression?

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11 A solution should normally have an osmotic pressure of 1.20 atm, but its actual osmotic pressure is 0.90 atm. If the solute forms dimers, what is the degree of association?

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12 A student assumes i = 1 for CaCl2, although the actual i is 2.5. How will the apparent molar mass compare with the true molar mass?

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13 Thirty percent of a solute’s particles form tetramers. If the true molar mass is M, what is the approximate apparent molar mass?

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14 The osmotic pressure of a solution is 0.65 times the normal value. If the solute forms only dimers, what is the degree of association?

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15 An AX3 electrolyte has an apparent molar mass equal to 0.40 times its true molar mass. What is the degree of dissociation?

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16 A solute has i = 0.8125 and forms only tetramers. What is the degree of association?

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17 For a 0.15 mol kg−1 solution, Kf = 2.0 K kg mol−1 and the observed freezing-point depression is 0.54 K. If the solute dissociates into two ions, what is the degree of dissociation?

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18 An MX4 salt is 45% dissociated. What fraction of the true molar mass is its apparent molar mass?

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19 If a colligative property of an AB3 solution is 120% higher than its normal value, what is the degree of dissociation?

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20 A solution has i = 2.05. If the solute is of the A2B type, what is the degree of dissociation?

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21 The lowering of vapour pressure in a solution is 2.4 times the normal value. If the solute is AB2, what is the degree of dissociation?

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22 Forty-five percent of a solute A forms A3. What is the value of i?

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23 A 0.04 M solution has osmotic pressure 1.476 atm at 300 K. Taking R = 0.082 L atm mol−1 K−1, what is i?

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24 If Kb = 0.60 K kg mol−1, m = 0.20 mol kg−1, and the observed boiling-point elevation is 0.18 K, what is i?

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25 Out of 100 initial AB2 units, 35 units dissociate. What is the total number of effective particles?

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