V. Colligative Properties

Ch. 13 - Solutions V. Colligative Properties

A. Definition • Colligative Property • property that depends on the concentration (# of moles) of solute particles, not their chemical nature (identity). • For example: NaCl and MgSO4

B. Types • 1. Freezing point depression (lowering) • 2. Boiling point elevation (raising) • 3. Vapor-pressure reduction • 4. Osmotic pressure

B. Types 1. Freezing Point Depression View Flash animation.

B. Types • Freezing Point Depression (tf) • f.p. of a solution is lower than f.p. of the pure solvent • tf -difference between the freezing point of the solution and the freezing point of the pure solvent

B. Types • Applications • salting icy roads melts ice • making ice cream- lowers temp. • Antifreeze (ethylene glycol) • cars (-64°C to 136°C)

B. Types 2. Boiling Point Elevation Solute particles weaken IMF in the solvent.

B. Types • 2. Boiling Point Elevation (tb) • b.p. of a solution is higher than b.p. of the pure solvent • tb - difference between the boiling point of the solution and the boiling point of the pure solvent

C. Calculations t: change in temperature (°C) k: constant based on the solvent (°C·kg/mol) m: molality (m) n: # of particles tf(b) = kf(b) · m · n 0.51 oC/m Boiling point k 1.86oC/m freezing point k

C. Calculations • # of Particles: • Nonelectrolytes (covalent) • remain intact when dissolved • C6H12O6 C6H12O6n=1 • Electrolytes (ionic) • dissociate into ions when dissolved • 2 or more particles NaCl Na+ + Cl-n=2 MgCl2 Mg+2 + 2Cl-n=3

C. Calculations • At what temperature will a solution that is composed of 0.73 moles of glucose (C6H12O6) in 225 g of water boil? GIVEN: b.p. = ? tb = ? kb = 0.51°C/ m WORK: m = 0.73mol ÷ 0.225kg tb = (0.51°C/ m)(3.2 m)(1) tb = 1.6°C b.p. = 100. °C + 1.6°C b.p. = 101.6°C m = 3.2 m n = 1 tb = kb · m · n

C. Calculations • Find the freezing point of a saturated solution of NaCl containing 28 g NaCl in 100. mL water. GIVEN: f.p. = ? tf = ? kf = 1.86°C/ m WORK: m = 0.48mol ÷ 0.100kg tf = (1.86°C/ m)(4.8 m)(2) tf = 18°C f.p. = 0.00°C - 18°C f.p. = -18°C m = 4.8 m n = 2 tf = kf · m · n

D. Molar Mass determination • Any colligative property can be used to determine the molar mass of an unknown (Exp. #24) • STRATEGY: Calculate number of moles required to produce observed change in colligative property

D. Molar Mass determination • Use: tb = kb · m · n to find # of moles • tb = kb · x moles/kgsolv · n • Molar Mass ( M )= mass solute/x moles

D. Molar Mass determination • Or use this formula: mass(g)solu · Kb(f) tb(f) · kgsolv Molar Mass (M) =

D. Molar Mass determination • A 10.0 g sample of an unknown compound that does not dissociate is dissolved in 100.0 g of water. The boiling point of the solution is elevated 0.433 0C above the normal boiling point. What is the molar mass of the unknown sample?

V. Colligative Properties

V. Colligative Properties

Presentation Transcript

Colligative Properties

Colligative Properties

Colligative Properties

COLLIGATIVE PROPERTIES

Colligative Properties:

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

COLLIGATIVE PROPERTIES

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

Colligative Properties

COLLIGATIVE PROPERTIES

Colligative Properties