Presentation is loading. Please wait.

Presentation is loading. Please wait.

Acid Dissociation Constant. Dissociation Constants For a generalized acid dissociation, the equilibrium expression would be This equilibrium constant.

Published byDale Lewis Modified over 8 years ago

Similar presentations

Presentation on theme: "Acid Dissociation Constant. Dissociation Constants For a generalized acid dissociation, the equilibrium expression would be This equilibrium constant."— Presentation transcript:

1 Acid Dissociation Constant

2 Dissociation Constants For a generalized acid dissociation, the equilibrium expression would be This equilibrium constant is called the acid-dissociation constant, K a. [H 3 O + ] [A - ] [HA] K c = HA (aq) + H 2 O (l) A - (aq) + H 3 O + (aq)

3 Dissociation Constants The greater the value of K a, the stronger is the acid.

4 Calculating K a from the pH The pH of a 0.10 M solution of formic acid, HCOOH, at 25  C is 2.38. Calculate K a for formic acid at this temperature. We know that [H 3 O + ] [COO - ] [HCOOH] K a =

5 Calculating K a from the pH The pH of a 0.10 M solution of formic acid, HCOOH, at 25  C is 2.38. Calculate K a for formic acid at this temperature. To calculate K a, we need the equilibrium concentrations of all three things. We can find [H 3 O + ], which is the same as [HCOO - ], from the pH.

6 Calculating K a from the pH pH = -log [H 3 O + ] 2.38 = -log [H 3 O + ] -2.38 = log [H 3 O + ] 10 -2.38 = 10 log [H 3 O + ] = [H 3 O + ] 4.2  10 -3 = [H 3 O + ] = [HCOO - ]

7 Calculating K a from pH Now we can set up a table… [HCOOH], M[H 3 O + ], M[HCOO - ], M Initially0.1000 Change - 4.2  10 -3 + 4.2  10 -3 At Equilibrium 0.10 - 4.2  10 -3 = 0.0958 = 0.10 4.2  10 -3

8 Calculating K a from pH [4.2  10 -3 ] [0.10] K a = = 1.8  10 -4

9 Calculating Percent Ionization Percent Ionization =  100 In this example [H 3 O + ] eq = 4.2  10 -3 M [HCOOH] initial = 0.10 M [H 3 O + ] eq [HA] initial Percent Ionization =  100 4.2  10 -3 0.10 = 4.2%

10 Calculating pH from K a Calculate the pH of a 0.30 M solution of acetic acid, HC 2 H 3 O 2, at 25  C. HC 2 H 3 O 2 (aq) + H 2 O (l) H 3 O + (aq) + C 2 H 3 O 2 - (aq) K a for acetic acid at 25  C is 1.8  10 -5.

11 Calculating pH from K a The equilibrium constant expression is [H 3 O + ] [C 2 H 3 O 2 - ] [HC 2 H 3 O 2 ] K a =

12 Calculating pH from K a We next set up a table… [C 2 H 3 O 2 ], M[H 3 O + ], M[C 2 H 3 O 2 - ], M Initially0.3000 Change-x+x At Equilibrium 0.30 - x  0.30 xx We are assuming that x will be very small compared to 0.30 and can, therefore, be ignored.

13 Calculating pH from K a Now, (x) 2 (0.30) 1.8  10 -5 = (1.8  10 -5 ) (0.30) = x 2 5.4  10 -6 = x 2 2.3  10 -3 = x

14 Calculating pH from K a pH = -log [H 3 O + ] pH = -log (2.3  10 -3 ) pH = 2.64

Download ppt "Acid Dissociation Constant. Dissociation Constants For a generalized acid dissociation, the equilibrium expression would be This equilibrium constant."

Similar presentations

Only a portion of the weak acids and bases will break apart when in H 2 O Only a fraction of the molecules will create H + or OH - Use the Keq to determine.

Only a portion of the weak acids and bases will break apart when in H 2 O Only a fraction of the molecules will create H + or OH - Use the Keq to determine.
Acid and Base Dissociation Constants. How do we calculate [H + ] for a weak acid? We know that strong acids dissociate 100% and that, therefore, the [H.

Acid and Base Dissociation Constants. How do we calculate [H + ] for a weak acid? We know that strong acids dissociate 100% and that, therefore, the [H.
Acids and Bases Entry Task: Jan 29 th Tuesday What is the [H+] and [OH-] of a solution with a pH of 4.67? You have 5 minutes!

Acids and Bases Entry Task: Jan 29 th Tuesday What is the [H+] and [OH-] of a solution with a pH of 4.67? You have 5 minutes!
AP Chemistry – Chapter 16 Acid and Base Equilibrium HW:3 6 17 19 25 37 47 53 57 59 73 81 89 93 101.

AP Chemistry – Chapter 16 Acid and Base Equilibrium HW:
Acids and Bases Chapter 14 Acids and Bases. Acids and Bases Some Definitions Arrhenius  Acid:Substance that, when dissolved in water, increases the concentration.

Acids and Bases Chapter 14 Acids and Bases. Acids and Bases Some Definitions Arrhenius  Acid:Substance that, when dissolved in water, increases the concentration.
Chapter 17: Additional Aspects of Aqueous Equilibria

Chapter 17: Additional Aspects of Aqueous Equilibria
Acids and Bases Calculating Percent Ionization Percent Ionization =  100 In this example [H 3 O + ] eq = 4.2  10 −3 M [HCOOH] initial = 0.10 M [H 3 O.

Acids and Bases Calculating Percent Ionization Percent Ionization =  100 In this example [H 3 O + ] eq = 4.2  10 −3 M [HCOOH] initial = 0.10 M [H 3 O.
Basic concepts: Acid-Base chemistry & pH 1.Recognizing acid/base and conjugate base/acid 2.Calculation of pH, pOH, [H 3 O + ], [OH - ] 3.Calculating pH.

Basic concepts: Acid-Base chemistry & pH 1.Recognizing acid/base and conjugate base/acid 2.Calculation of pH, pOH, [H 3 O + ], [OH - ] 3.Calculating pH.
ACIDS AND BASES Dissociation Constants. weaker the acid, the stronger its conjugate base stronger the acid, the weaker its conjugate base.

ACIDS AND BASES Dissociation Constants. weaker the acid, the stronger its conjugate base stronger the acid, the weaker its conjugate base.
Acid-Base Equilibria Chapter 16.

Acid-Base Equilibria Chapter 16.
Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO 2006, Prentice Hall, Inc. Modified by S.A. Green,

Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO 2006, Prentice Hall, Inc. Modified by S.A. Green,
Aqueous Equilibria © 2009, Prentice-Hall, Inc. The Common-Ion Effect Consider a solution of acetic acid: If acetate ion is added to the solution, Le Châtelier.

Aqueous Equilibria © 2009, Prentice-Hall, Inc. The Common-Ion Effect Consider a solution of acetic acid: If acetate ion is added to the solution, Le Châtelier.
Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO  2006, Prentice Hall, Inc. Chemistry, The Central.

Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO  2006, Prentice Hall, Inc. Chemistry, The Central.
Chapter 16 Acid–Base Equilibria

Chapter 16 Acid–Base Equilibria
Unit 5: Acids & Bases Lesson 4

Unit 5: Acids & Bases Lesson 4
Acids and Bases Chapter 20 Lesson 2. Definitions Acids – produce H + Bases - produce OH - Acids – donate H + Bases – accept H + Acids – accept e - pair.

Acids and Bases Chapter 20 Lesson 2. Definitions Acids – produce H + Bases - produce OH - Acids – donate H + Bases – accept H + Acids – accept e - pair.
Acids and Bases © 2009, Prentice-Hall, Inc. Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College Cottleville, MO Chemistry, The.

Acids and Bases © 2009, Prentice-Hall, Inc. Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College Cottleville, MO Chemistry, The.
Chapter 16 Acid–Base Equilibria Lecture Presentation Dr. Subhash C Goel South GA State College Douglas, GA © 2012 Pearson Education, Inc.

Chapter 16 Acid–Base Equilibria Lecture Presentation Dr. Subhash C Goel South GA State College Douglas, GA © 2012 Pearson Education, Inc.
Chapter 16 Acid–Base Equilibria

Chapter 16 Acid–Base Equilibria
Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO  2006, Prentice Hall, Inc. Chemistry, The Central.

Acids and Bases Chapter 16 Acids and Bases John D. Bookstaver St. Charles Community College St. Peters, MO  2006, Prentice Hall, Inc. Chemistry, The Central.

Similar presentations

Ads by Google