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Colligative Properties • Depend on the concentration of solute particles, but not on chemical identity. • In the case of a solute that does not ionize, “concentration of solute particles” has the same meaning as “solute concentration”.

Colligative Properties

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Colligative Properties. Depend on the concentration of solute particles, but not on chemical identity. In the case of a solute that does not ionize, “concentration of solute particles” has the same meaning as “solute concentration”. Some Colligative Properties. Vapor pressure lowering - PowerPoint PPT Presentation

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Page 1: Colligative  Properties

Colligative Properties

• Depend on the concentration of solute particles, but not on chemical identity.

• In the case of a solute that does not ionize, “concentration of solute particles” has the same meaning as “solute concentration”.

Page 2: Colligative  Properties

Some Colligative Properties

• Vapor pressure lowering– Boiling point elevation– Freezing point depression

• Osmotic pressure

Page 3: Colligative  Properties

Why Vapor Pressure Lowering?

• Results when a non-volatile solute is dissolved in a volatile solvent.

• Only some of the surface molecules have the ability to vaporize, compared to all of the surface molecules in the case of a pure solvent.

• As a result, the vapor pressure of the solution is less than that of a pure solvent.

Page 4: Colligative  Properties

Molecular-Level Explanation for Vapor Pressure Lowering (image 1 of 3)

Page 5: Colligative  Properties

Molecular-Level Explanation for Vapor Pressure Lowering (image 2 of 3)

Page 6: Colligative  Properties

Molecular-Level Explanation for Vapor Pressure Lowering (image 3 of 3)

Page 7: Colligative  Properties

An Interesting Illustration of the Difference in Vapor Pressure Between Solvent and Solution

Page 8: Colligative  Properties

Raoult’s Law

• P = X . Po

• Obeyed exactly, only for ideal solutions• For non-ideal solutions, Raoult’s law is more

closely followed for dilute solutions

Page 9: Colligative  Properties
Page 10: Colligative  Properties

Raoult’s Law Applied to Both Solvent and Solute (when both are volatile)• P = X . Po

• P = X . Po

• P = P + P = X . Po + X . Po = (1-X) . Po + X . Po

Page 11: Colligative  Properties
Page 12: Colligative  Properties

Vapor Pressure Lowering Changes the Boiling and Freezing Points

Page 13: Colligative  Properties

Equations for Boiling Point Elevation and Freezing Point Depression

• DTb = Tb – Tob and DTb = Kb . cm

• DTf = Tf – Tof and DTf = -Kf . cm

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