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Subjects

Chemistry

6: Molar Mass Determination

मोलर द्रव्यमान का निर्धारण

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how the molar mass of a solute can be determined from the measurable properties of a solution. The topic connects mass, moles, concentration, and colligative properties such as relative lowering of vapour pressure, elevation of boiling point, depression of freezing point, and osmotic pressure. Students also practise selecting suitable formulas, interpreting experimental data, and recognising how observed results can indicate association or dissociation of solute particles.

Practice questions

01 If 4.4 g of a solute corresponds to 0.025 mol, what is the approximate molar mass of the solute?

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02 A 0.01 M solution has a volume of 500 mL and contains 0.9 g of solute. What is the molar mass of the solute?

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03 In molar mass determination, if the solute is completely non-dissociated, what value of i is taken?

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04 In the osmotic-pressure method, if the mass of solute is increased while all other quantities remain constant, how will the calculated molar mass change?

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05 Which method is safest for determining the molar mass of large biomolecules because it does not require a large temperature change?

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06 In the osmotic-pressure method, 0.01 mol of a non-electrolyte solute is present in 1 L of solution. At 300 K, if R = 0.082 L atm K⁻¹ mol⁻¹, what is the osmotic pressure?

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07 If 1 g of solute is dissolved in 200 g of solvent and its molar mass is 50 g mol⁻¹, what is the molality of the solution?

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08 For a non-dissociating solute, Kb = 0.52 K kg mol⁻¹ and the molality is 0.5 mol kg⁻¹. What is the elevation in boiling point?

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09 If the K_b value of the wrong solvent is used while calculating molar mass from boiling-point elevation, what will happen?

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10 When calculating molar mass by the osmotic-pressure method at \(27^\circ\mathrm{C}\), what temperature value should be used?

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11 In the freezing-point-depression method, \(K_f=1.86\,\mathrm{K\,kg\,mol^{-1}}\), \(\Delta T_f=0.93\,\mathrm{K}\), and the solute is non-dissociating. What is the molality?

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12 If \(2\,\mathrm{g}\) of solute is present in a \(1\,\mathrm{L}\) solution and its molar mass determined by osmotic pressure is \(100\,\mathrm{g\,mol^{-1}}\), how many moles of solute are present?

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13 If the relative lowering of vapour pressure of a solution is 0.05, what is the mole fraction of solute in an ideal dilute solution?

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14 If the mole fraction of solute is 0.1 and the total number of moles is 2, how many moles of solute are present?

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15 While calculating molar mass by the osmotic pressure method, if the volume is given as 250 mL, in what form should it be used in the formula?

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16 A 0.02 mol sample of a substance has a mass of 3.6 g. What is the molar mass of the substance?

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17 In the freezing-point-depression method, if the solute mass is doubled while the solvent mass remains constant, what happens to ΔT_f for a nonelectrolyte?

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18 If the boiling point of a solution is 373.26 K and that of the pure solvent is 373.00 K, what is ΔT_b?

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19 If the freezing point of a solution is 272.44 K and that of the pure solvent is 273.00 K, what is ΔT_f?

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20 For a nonelectrolyte, K_f = 1.86 K kg mol⁻¹ and ΔT_f = 0.56 K. What is the approximate molality?

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21 Which method requires a semipermeable membrane to determine molar mass?

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22 Which property is required to determine the molar mass of a solute by the freezing-point-depression method?

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23 Which colligative property is considered most suitable for determining the molar mass of high-molar-mass substances such as proteins?

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24 If the observed molar mass of a solute is greater than its actual molar mass, which phenomenon does this generally indicate?

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25 A solute has a normal molar mass of 100 g mol⁻¹ and an observed molar mass of 125 g mol⁻¹. What is the value of i?

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