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Subjects

Chemistry

4: Vapour Pressure

वाष्प दाब

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how vapour pressure arises from the dynamic equilibrium between evaporation and condensation in a liquid. The topic explains the effect of temperature and the presence of a non-volatile solute, including lowering of vapour pressure. Students also connect vapour pressure with mole fraction through Raoult’s law and examine how ideal and non-ideal solutions differ, using equations and basic numerical applications.

Practice questions

01 Why does equilibrium vapour pressure not change when surface area of a liquid is increased?

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02 In a pressure-composition graph, the actual line is above the ideal line. Which azeotrope is more likely to form?

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03 In a pressure-composition graph, the actual line is below the ideal line. Which azeotrope is more likely to form?

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04 For a non-volatile solute, relative lowering of vapour pressure is equal to what?

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05 Relative lowering of vapour pressure is equal to what for an ideal dilute solution?

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06 If a non-volatile solute is dissolved in water, what is the main reason for lowering of vapour pressure?

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07 A solution has relative lowering of vapour pressure equal to 0.02. Assuming an ideal dilute solution, what is the mole fraction of solute?

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08 Which change is most suitable for lowering the vapour pressure of a solution when the solute is non-volatile?

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09 If the relative lowering of vapour pressure is 0.02 and the number of moles of solvent is 9.8, approximately how many moles of solute are present in the dilute solution?

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10 Why is the vapour-pressure method considered comparatively difficult for molar mass determination?

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11 A solution has relative lowering of vapour pressure \(0.02\). If the total number of moles in the solution is \(5.0\), how many moles of solute are present?

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