Presentation is loading. Please wait.

Presentation is loading. Please wait.

Outline:2/28/07 è è Today: Chapter 17 (cont’d) è Seminar – 4pm è Pick up Quiz #5 – from me è Mid-term grades due today… Ù Acid-base Equilibria:

Published by Modified over 9 years ago

Similar presentations

Presentation on theme: "Outline:2/28/07 è è Today: Chapter 17 (cont’d) è Seminar – 4pm è Pick up Quiz #5 – from me è Mid-term grades due today… Ù Acid-base Equilibria:"— Presentation transcript:

1 Outline:2/28/07 è è Today: Chapter 17 (cont’d) è Seminar – Friday @ 4pm è Pick up Quiz #5 – from me è Mid-term grades due today… Ù Acid-base Equilibria: More weak acid/base/salt pH calcs The relationship K a  K b = K w Hydrolysis & Neutralization

2 Quiz #5 3. 2 NO (g) + O 2(g)  2NO 2(g) 1.0 1.0 1.0 (init)  x  x +2x (change) 2  2x 1.5  x 2x (equil.) K eq = (2x) 2 (2) 2 (1  ) K is small  1.0   1.0 2.0 1.5 0.0 (init) neglect

3 Acids & Bases: Chapter 17 Any chemical that donates a proton is a Bronsted-Lowry acid… any chemical that accepts a proton is a Bronsted-Lowry base.  HCl  H + + Cl   HCl + H 2 O  H 3 O + + Cl  acidbaseConjugate acid Conjugate base

4 Acids & Bases: Some chemicals can do both: they are called “amphoteric”  HSO 3  + H 2 O  H 3 O + + SO 3  acidbaseConjugate acid Conjugate base  HSO 3  + H 2 O  H 2 SO 3 + OH  acidbaseConjugate acid Conjugate base

5 Calculation Examples: Calculate the pH of a solution of 2.5  10  2 M HClO 4 ? (perchloric acid) n Step #1: identify the acid If strong acid  complete dissociation Step #2: pH =  log [H + ]  log (2.5  10  2 ) = 1.60  HClO 4  H + + ClO 4   2.5  10  2 M 0 0 init  0 equil  2.5  10  2 M 2.5  10  2 M

6 Examples: Calculate the pH of a solution of 2.5  10  2 M HClO? (hypochlorous acid) n Step #1: identify the acid  if weak acid  look up K a = 3.5  10  8 Step #2: pH =  log [H + ]  log (2.7  10  5 ) = 4.56  HClO  H + + ClO   2.5  10  2 M 0 0 init  (2.5  10  2  x )M x M x M equil

7 Weak Base Example: Calculate the pH of a solution of 2.5  10  2 M trimethylamine (CH 3 ) 3 N ? n Step #1: identify it as a weak base  look up K b = 6.5  10  5  (CH 3 ) 3 N  H 2 O  OH  + (CH 3 ) 3 N H +  2.5  10  2 M 0 0 init  (2.5  10  2  x )M x M x M equil Step #2: pOH =  log [OH  ]  log (1.3  10  3 ) = 2.89 Step #3: 14  pOH = pH = 11.11

8 Problem solving overview: Skills needed to solve these problems: 1) Identify strong/weak acid/bases 2) Identify conjugate acid/bases & salts 3) Solving equilibrium problems 4) Identifying & making the correct K eq Know the 6 strong acids / 4 strong bases… Know solubility rules & acid/base definitions Solve for x…forward or backwards... Add equations to make new one & K’s multiply

9 Acids & Bases: What are K a & K b ?   HA  H + + A   H 2 A  H + + HA   HA   H + + HA  K eq  BOH  B + + OH   A  + H 2 O  HA + OH  B + + H 2 O  H + + BOH  H 2 O  H + + OH  KaKa K a1 K a2

10 Acids & Bases: What are K a & K b ?  H 2 A  H + + HA   HA   H + + HA  K eq K a1 K a2 “polyprotic acids”

11 Acids & Bases: What are K a & K b ?   HA  H + + A   H 2 A  H + + HA   HA   H + + HA  K eq  BOH  B + + OH   A  + H 2 O  HA + OH  B + + H 2 O  H + + BOH  H 2 O  H + + OH  KaKa K a1 K a2 KaKa

12 Acids & Bases: What are K a & K b ? K eq “Hydrolysis” (often metal salts….) B + + H 2 O  H + + BOH KaKa

13 Acids & Bases: What are K a & K b ?   HA  H + + A   H 2 A  H + + HA   HA   H + + HA  K eq  BOH  B + + OH   A  + H 2 O  HA + OH  B + + H 2 O  H + + BOH  H 2 O  H + + OH  KaKa K a1 K a2 KaKa KbKb KbKb

14 Acids & Bases: What are K a & K b ? K eq  A  + H 2 O  HA + OH  “hydrolysis” (conjugate base salts) KbKb

15 Acids & Bases: What are K a & K b ?   HA  H + + A   H 2 A  H + + HA   HA   H + + HA  K eq  BOH  B + + OH   A  + H 2 O  HA + OH  B + + H 2 O  H + + BOH  H 2 O  H + + OH  KaKa K a1 K a2 KaKa KbKb KbKb KwKw

16 Acids & Bases: What are K a & K b ?   HA  H + + A  K eq  A  + H 2 O  HA + OH  KaKa KbKb  H 2 O  H + + OH  KwKw Or: K a  K b = K w Remember: Hess’ Law

17 Example: n Determine K eq for:  HCO 3  + OH   CO 3  + H 2 O Step #1: identify the acid H 2 CO 3 (carbonic acid) Step #2: what needs to be added?  H + + OH   H 2 O  HCO 3   H + + CO 3  K a2  4.8  10  11  1/K w 1/1.0  10  14 K eq = 4.8  10  11 / 1.0  10  14

18 Let’s try some more examples n The pH of an 0.0222 M solution of a weak acid is 5.43 Which acid is it?  You know x = 10  5.43 = 3.71  10   HA  H + + A   (0.0222  x) M x M x M Equil Solve for K eq K = x 2 / (0.0222 - x) = (3.71e-6) 2 /(0.0222)  = 6.2  10  10 App. E: HCN

19 Worksheet 7 Try some more…

Download ppt "Outline:2/28/07 è è Today: Chapter 17 (cont’d) è Seminar – 4pm è Pick up Quiz #5 – from me è Mid-term grades due today… Ù Acid-base Equilibria:"

Similar presentations

Acid-Base Equilibria.

Acid-Base Equilibria.
Chapter 14 Arrhenius –Acid – create H + in water –Base – create OH - in water Bronsted-Lowery –Acid – donates proton (H + ) –Base – accepts proton (H +

Chapter 14 Arrhenius –Acid – create H + in water –Base – create OH - in water Bronsted-Lowery –Acid – donates proton (H + ) –Base – accepts proton (H +
Ch. 14: Acids and Bases 14.6 Bases. Strong Base Weak Base.

Ch. 14: Acids and Bases 14.6 Bases. Strong Base Weak Base.
Acid-Base Equilibria Chapter 16. Revision Acids and bases change the colours of certain indicators. Acids and bases neutralize each other. Acids and bases.

Acid-Base Equilibria Chapter 16. Revision Acids and bases change the colours of certain indicators. Acids and bases neutralize each other. Acids and bases.
CH. 16 ACID -- BASE 16.4 pH scale (pOH) 16.1 Definition 16.2

CH. 16 ACID -- BASE 16.4 pH scale (pOH) 16.1 Definition 16.2
Outline:3/9/07 è Chem. Dept. Seminar 4pm è 3 more lectures until Exam 2… è Chemistry Advising – 4pm Today: è More Chapter 18 Titrations.

Outline:3/9/07 è Chem. Dept. Seminar 4pm è 3 more lectures until Exam 2… è Chemistry Advising – 4pm Today: è More Chapter 18 Titrations.
Chapter 14 Aqueous Equilibria: Acids and Bases. Polyprotic Acids Acids that contains more than one dissociable proton Dissociate in a stepwise manner.

Chapter 14 Aqueous Equilibria: Acids and Bases. Polyprotic Acids Acids that contains more than one dissociable proton Dissociate in a stepwise manner.
1 Acid-Base Properties of a Salt Solution  One of the successes of the Brønsted- Lowry concept of acids and bases was in pointing out that some ions can.

1 Acid-Base Properties of a Salt Solution  One of the successes of the Brønsted- Lowry concept of acids and bases was in pointing out that some ions can.
Acids and Bases Chapter 16 Johannes N. Bronsted Thomas M. Lowry

Acids and Bases Chapter 16 Johannes N. Bronsted Thomas M. Lowry
Chapter 12 Acids and Bases

Chapter 12 Acids and Bases
Updates Assignment 04 is is due today (in class) Midterms marked (in the box); solutions are posted Assignment 03 is in the box.

Updates Assignment 04 is is due today (in class) Midterms marked (in the box); solutions are posted Assignment 03 is in the box.
Previously in Chem104: plant pigments do acid/base chemistry it’s just equilibrium new names: K a, K b for same K expressions the concept of K w the concept.

Previously in Chem104: plant pigments do acid/base chemistry it’s just equilibrium new names: K a, K b for same K expressions the concept of K w the concept.
1 Acids and Bases. 2 Acids Have a sour taste. Vinegar owes its taste to acetic acid. Citrus fruits contain citric acid. React with certain metals to produce.

1 Acids and Bases. 2 Acids Have a sour taste. Vinegar owes its taste to acetic acid. Citrus fruits contain citric acid. React with certain metals to produce.
Acids and Bases Chapter 15 15.1-15.10 and 15.12. Br Ø nstead Acids and Br Ø nstead Bases Recall from chapter 4: Recall from chapter 4: –Br Ø nstead Acid-

Acids and Bases Chapter and Br Ø nstead Acids and Br Ø nstead Bases Recall from chapter 4: Recall from chapter 4: –Br Ø nstead Acid-
Outline:2/28/07 è Hand in Seminar Reports – to me è Pick up Quiz #6 – from me è Pick up CAPA 14 - outside è 5 more lectures until Exam 2… Today: è End.

Outline:2/28/07 è Hand in Seminar Reports – to me è Pick up Quiz #6 – from me è Pick up CAPA 14 - outside è 5 more lectures until Exam 2… Today: è End.
Acid-Base Equilibria Chapter 16. HA (aq) + H 2 O (l) H 3 O + (aq) + A - (aq) Weak Acids (HA) and Acid Ionization Constants HA (aq) H + (aq) + A - (aq)

Acid-Base Equilibria Chapter 16. HA (aq) + H 2 O (l) H 3 O + (aq) + A - (aq) Weak Acids (HA) and Acid Ionization Constants HA (aq) H + (aq) + A - (aq)
Acids and Bases Chapter 15

Acids and Bases Chapter 15
Previously in Chem104: the concept of K w the concept of the K w circle p-functions (pH, pK a, pK w ) pH scale P-functions in calcs Today in Chem104: How.

Previously in Chem104: the concept of K w the concept of the K w circle p-functions (pH, pK a, pK w ) pH scale P-functions in calcs Today in Chem104: How.
Acid-Base Equilibria pH and pOH Relationship of Conjugate Pair acid-base strength. When acids or bases control pH:  determine K  predict pH When pH controls.

Acid-Base Equilibria pH and pOH Relationship of Conjugate Pair acid-base strength. When acids or bases control pH:  determine K  predict pH When pH controls.
Outline:2/26/07 è è Today: Start Chapter 17 è CAPA 10 & 11 – due today è Pick up CAPA 12 & 13 – outside è Turn in seminar reports – to me Ù Acid-base Equilibria:

Outline:2/26/07 è è Today: Start Chapter 17 è CAPA 10 & 11 – due today è Pick up CAPA 12 & 13 – outside è Turn in seminar reports – to me Ù Acid-base Equilibria:

Similar presentations

Ads by Google