Presentation is loading. Please wait.

Presentation is loading. Please wait.

© University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  sol higher.

Published byHortense Dixon Modified over 9 years ago

Similar presentations

Presentation on theme: "© University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  sol higher."— Presentation transcript:

1 © University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  sol higher boiling point  T = + k b x m sol  lower freezing point  T = - k f x m sol osmotic pressure Colligative Properties

2 © University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  solute higher boiling point  T = + k b x m solute lower freezing point  T = - k f x m solute  osmotic pressure Colligative Properties

3 © University of South Carolina Board of Trustees ●Solvent flow initially in balance. ●Adding solute blocks flow right  left.

4 © University of South Carolina Board of Trustees ●The solvent level on the right rises due to osmotic pressure.

5 © University of South Carolina Board of Trustees ●External pressure can restore equilibrium. 

6 © University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  sol higher boiling point  T = + k b x m sol k f x m sol lower freezing point  T = - k f x m sol  osmotic pressure  = RT x M sol Colligative Properties

7 © University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: -P  sol lower vapor pressure  P = - P  x  sol k b m sol higher boiling point  T = + k b x m sol k f m sol lower freezing point  T = - k f x m sol RTM sol osmotic pressure  = RT x M sol Colligative Properties moles of solute Solvent properties Each can measure molecular mass

8 © University of South Carolina Board of Trustees Last Lecture Find the molar mass of a solute, if a solution of 1.33 g of the compound dissolved in 25.0 g of benzene has a boiling point of 81.22 o C.

9 © University of South Carolina Board of Trustees Student Example: Molar Mass by Osmotic Pressure A 5.70 mg sample of protein is dissolved in water to give 1.00 mL of solution. Calculate the molar mass of the protein, if the solution has an osmotic pressure of 6.52 Torr at 20  C. R = 0.0821 L-atm/K-mol 1 atm = 760 Torr

10 © University of South Carolina Board of Trustees Chapt. 12 Solutions Sec. 5 Colligative Properties with Ions

11 © University of South Carolina Board of Trustees Ions and Colligative Properties NaCl (s)  Na + (aq) + Cl - (aq) Ca(NO 3 ) 2(s)  Ca 2+ (aq) + 2 NO 3 - (aq) n solute = i  n formula found by colligative properties usually desired van’t Hoff factor 1 1 mole by formula wt. 2 2 moles of solute i = 2 1 1 mole by formula wt. 3 3 moles of solute i = 3

12 © University of South Carolina Board of Trustees Student Example Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s) (a nonelectrolyte) 0.01 molal NaOH 0.02 molal BaCl 2 0.01 molal Fe(NO 3 ) 3

13 © University of South Carolina Board of Trustees Student Example Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s)  urea(aq)0.03 m solute 0.01 molal NaOH 0.02 molal BaCl 2 0.01 molal Fe(NO 3 ) 3

14 © University of South Carolina Board of Trustees Student Example Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s)  urea(aq)0.03 m solute 0.01 molal NaOH  Na + + OH - 0.02 m ions 0.02 molal BaCl 2 0.01 molal Fe(NO 3 ) 3

15 © University of South Carolina Board of Trustees Student Example molal Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s)  urea(aq)0.03 m solute 0.01 molal NaOH  Na + + OH - 0.02 m ions 0.02 molal BaCl 2  Ba 2+ + 2 Cl - 0.06 m ions 0.01 molal Fe(NO 3 ) 3

16 © University of South Carolina Board of Trustees Student Example Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s)  urea(aq)0.03 m solute 0.01 molal NaOH  Na + + OH - 0.02 m ions 0.02 molal BaCl 2  Ba 2+ + 2 Cl - 0.06 m ions 0.01 molal Fe(NO 3 ) 3  Fe 3+ + 3 NO 3 - 0.04 m ions

17 © University of South Carolina Board of Trustees Student Example Arrange the following aqueous solutions in order of increasing boiling points: 0.03 molal urea(s)  urea(aq)0.03 m solute 0.01 molal NaOH  Na + + OH - 0.02 m ions  0.02 molal BaCl 2  Ba 2+ + 2 Cl - 0.06 m ions  0.01 molal Fe(NO 3 ) 3  Fe 3+ + 3 NO 3 - 0.04 m ions 

18 © University of South Carolina Board of Trustees Chapt. 12 Solutions Sec. 6 Vapor Pressure of Liquid-Liquid Solutions (skip)

19 © University of South Carolina Board of Trustees Chapt. 13 Kinetics (Later)

20 © University of South Carolina Board of Trustees Chapt. 14 Chemical Equilibrium Sec. 1 What is Chemical Equilibrium?

21 © University of South Carolina Board of Trustees What is Chemical Equilibrium? ●Both products and reactants remain ●Macroscopically Static: System has finished changing (not just slow)

22 © University of South Carolina Board of Trustees Macroscopically Unchanging 2 NO 2(g) N 2 O 4(g) brown colorless equilibrium Next Day

23 © University of South Carolina Board of Trustees What is Chemical Equilibrium? ●Both products and reactants remain ●Macroscopically Static: System has finished changing (not just slow)

24 © University of South Carolina Board of Trustees What is Chemical Equilibrium? ●Both products and reactants remain ●Macroscopically Static: System has finished changing (not just slow) ●Molecularly Dynamic: Forward and backward rates are in balance

25 © University of South Carolina Board of Trustees Molecules Dynamic 2 NO 2(g)  N 2 O 4(g) brown colorless equilibrium Next Day

26 © University of South Carolina Board of Trustees What is Chemical Equilibrium? ●Both products and reactants remain ●Macroscopically Static: System has finished changing (not just slow) ●Molecularly Dynamic: Forward and backward rates are in balance ●Equilibrium concentrations independent of starting conditions

27 © University of South Carolina Board of Trustees Independent of Starting Conditions final:2 NO 2 (g)  N 2 O 4 (g) 2 NO 2 (g)  N 2 O 4 (g) initial: 100% NO 2 (g) 100 % N 2 O 4 (g) equilibrium concentrations

28 © University of South Carolina Board of Trustees Chapt. 14 Chemical Equilibrium Sec. 1 How are the Equilibrium Concentrations Calculated?

29 © University of South Carolina Board of Trustees Experiments: Equilibrium concentrations from several initial concentrations Initial concentration, M Equilibrium concentration, M [NO 2 ][N 2 O 4 ] 0.02000.00000.01034.86 x 10 -3 0.00000.01000.01034.86 x 10 -3 2 NO 2 (g)  N 2 O 4 (g) junk 0.03000.00000.01348.29 x 10 -30.62 0.04000.00000.016111.9 x 10 -30.74 [N 2 O 4 ][NO 2 ] Ratio I 0.47 0.47 [N 2 O 4 ] [NO 2 ]

30 © University of South Carolina Board of Trustees Experiments: Equilibrium concentrations from several initial concentrations Initial concentration, M Equilibrium concentration, M Ratio I [NO 2 ][N 2 O 4 ] 0.02000.00000.01034.86 x 10 -3 0.4745.8 0.00000.01000.01034.86 x 10 -3 0.4745.8 0.03000.00000.01348.29 x 10 -3 0.6246.2 0.04000.00000.016111.9 x 10 -3 0.7445.9 2 NO 2 (g)  N 2 O 4 (g) Ratio II [N 2 O 4 ][NO 2 ][N 2 O 4 ] [NO 2 ] [NO 2 ] 2 constant !

31 Fast Forward © University of South Carolina Board of Trustees >>>

32 © University of South Carolina Board of Trustees Equilibrium Constant Expression 2 NO 2 (g)  N 2 O 4 (g) Example: a A + b B  c C + d D In General: products – top reactants – bottom concentration

33 © University of South Carolina Board of Trustees Equilibrium Constant Expression 1 2 NO 2 (g)  1 N 2 O 4 (g) Example: abcd a A + b B  c C + d D In General: products – top reactants – bottom Equilibrium Constant a numbera number independent of starting amountsindependent of starting amounts

34 © University of South Carolina Board of Trustees Examples CO (g) + H 2 O (g)  H 2(g) + CO 2(g) Cl 2(g)  2 Cl (g) 2 O 3(g)  3 O 2(g)

Download ppt "© University of South Carolina Board of Trustees Adding a nonvolatile solute to a pure solvent causes: lower vapor pressure  P = - P  x  sol higher."

Similar presentations

© University of South Carolina Board of Trustees Spaghetti Science What happens somewhat before a pot of water boils? ●Bubbles form on sides of the pot.

© University of South Carolina Board of Trustees Spaghetti Science What happens somewhat before a pot of water boils? ●Bubbles form on sides of the pot.
Chapter 12 Solutions.

Chapter 12 Solutions.
Chapter 13- Unit 2 Colligative Properties - are properties of solutions that depend on the number of molecules in a given volume of solvent and not on.

Chapter 13- Unit 2 Colligative Properties - are properties of solutions that depend on the number of molecules in a given volume of solvent and not on.
Ions in aqueous Solutions And Colligative Properties

Ions in aqueous Solutions And Colligative Properties
Solutions and Colligative Properties

Solutions and Colligative Properties
© 2009, Prentice-Hall, Inc. Colligative Properties Changes in colligative properties depend only on the number of solute particles present, not on the.

© 2009, Prentice-Hall, Inc. Colligative Properties Changes in colligative properties depend only on the number of solute particles present, not on the.
Compounds in Aqueous Solutions. Total Ionic Equations Once you write the molecular equation (synthesis, decomposition, etc.), you should check for reactants.

Compounds in Aqueous Solutions. Total Ionic Equations Once you write the molecular equation (synthesis, decomposition, etc.), you should check for reactants.
Colligative Properties. How does the solute change the properties of the solvent? Consider aqueous solutions. Solvent = water. How do the properties of.

Colligative Properties. How does the solute change the properties of the solvent? Consider aqueous solutions. Solvent = water. How do the properties of.
Colligative Properties (solutions)

Colligative Properties (solutions)
Chapter 12. Remember that a solution is any homogeneous mixture. There are many types of solutions: SoluteSolvent Resulting Solution Examples gasgasgasair.

Chapter 12. Remember that a solution is any homogeneous mixture. There are many types of solutions: SoluteSolvent Resulting Solution Examples gasgasgasair.
Calculations Involving Colligative Properties Review Molarity (M) = moles of solute liter of solution Dilutions: M 1 x V 1 = M 2 x V 2 Percent by volume.

Calculations Involving Colligative Properties Review Molarity (M) = moles of solute liter of solution Dilutions: M 1 x V 1 = M 2 x V 2 Percent by volume.
Solutions. Occur in all phases u The solvent does the dissolving. u The solute is dissolved. u There are examples of all types of solvents dissolving.

Solutions. Occur in all phases u The solvent does the dissolving. u The solute is dissolved. u There are examples of all types of solvents dissolving.
Colligative Properties

Colligative Properties
Molality and Mole Fraction b In Chapter 5 we introduced two important concentration units. 1. % by mass of solute 2. Molarity.

Molality and Mole Fraction b In Chapter 5 we introduced two important concentration units. 1. % by mass of solute 2. Molarity.
Solutions... the components of a mixture are uniformly intermingled (the mixture is homogeneous).

Solutions... the components of a mixture are uniformly intermingled (the mixture is homogeneous).
Colligative Properties & Solubility Rules Ariel Autrey, Katie Elicker, and Alyssa Truong.

Colligative Properties & Solubility Rules Ariel Autrey, Katie Elicker, and Alyssa Truong.
Colligative Properties of Solutions Colligative properties = physical properties of solutions that depend on the # of particles dissolved, not the kind.

Colligative Properties of Solutions Colligative properties = physical properties of solutions that depend on the # of particles dissolved, not the kind.
Properties of Solutions Chapter 18 Lesson 3. Solution Composition Mass percentage (weight percentage): mass percentage of the component = X 100% mass.

Properties of Solutions Chapter 18 Lesson 3. Solution Composition Mass percentage (weight percentage): mass percentage of the component = X 100% mass.
Colligative Properties. Properties that depend upon the concentration of solute particles are called colligative properties. Generally these properties.

Colligative Properties. Properties that depend upon the concentration of solute particles are called colligative properties. Generally these properties.
GENERAL PROPERTIES OF SOLUTIONS

GENERAL PROPERTIES OF SOLUTIONS

Similar presentations

Ads by Google