1

Acetic acid, has a Ka of 1.7 x 10-5. Determine the pH of a 0.10 Msolution of acetic acid.

Hint: First write out the equilibrium expression of the

acid in water.

CH3COOH + H2O ↔ H3O+ + CH3COO-

2

Now make a I.C.E. Chart and fill in the

values

CH3COOH + H2O ↔ H3O+ + CH3COO-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

Acetic acid, has a Ka of 1.7 x 10-5. Determine the pH of a 0.10 Msolution of acetic acid.

3

Acetic acid, has a Ka of 1.7 x 10-5. Determine the pH of a 0.10 Msolution of acetic acid.

Create an equilibrium expression from the

“E.” term.

CH3COOH + H2O ↔ H3O+ + CH3COO-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

COOH][CH]COO][CHO[HK

3

33a

so: x

xx

1001071

25

..

Try dropping the -x term. If the value of x comes out toless than 5% of 0.10dropping the term isjustified.

x = 1.30 x 10-3 so dropping the term was valid.

since x = [H3O+] , pH = -log(1.30 x 10-3) = 2.88

and pH = 14 – 2.87 = 11.12

4

A weak acid, HA, has a pKa of 5.82. Determine the pH of a 0.050 Msolution of HA.

Hint: First write out the equilibrium expression of the

acid in water.

HA + H2O ↔ H3O+ + A-

5

A weak acid, HA, has a pKa of 5.82. Determine the pH of a 0.050 Msolution of HA.

Now make a I.C.E. Chart and fill in the

values

HA + H2O ↔ H3O+ + A-

I.

C.

E.

0.050 0 0

-x +x +x

0.050-x +x +x

6

A weak acid, HA, has a pKa of 5.82. Determine the pH of a 0.050 Msolution of HA.

Determine the Ka and create an equilibrium expression from the

“E.” term.

HA + H2O ↔ H3O+ + A-

I.

C.

E.

0.050 0 0

-x +x +x

0.050-x +x +x

Since pKa = 5.82. The value of Ka = 10-5.82 = 1.51 x 10-6

]HA[]A][OH[K 3

a

so: x050.0

x10x51.12

6

Try dropping the -x term. If the value of x comes out toless than 5% of 0.050dropping the term isjustified.

x = 2.75 x 10-4 so dropping the term was valid.

since x = [H3O+] , pH = -log(2.75 x 10-4) = 3.56

7

8

Ammonia, has a Kb of 1.8 x 10-5. Determine the pH of a 0.10 Msolution of ammonia.

Hint: First write out the equilibrium expression of the

base in water.

NH3 + H2O ↔ NH4+ + OH-

9

Ammonia, has a Kb of 1.8 x 10-5. Determine the pH of a 0.10 Msolution of ammonia..

Now make a I.C.E. Chart and fill in the

values

NH3 + H2O ↔ NH4+ + OH-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

10

Ammonia, has a Kb of 1.8 x 10-5. Determine the pH of a 0.10 Msolution of ammonia.

Create an equilibrium expression from the

“E.” term.

NH3 + H2O ↔ NH4+ + OH-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

]B[]OH][BH[Kb

so: x10.0

x10x8.12

5

Try dropping the -x term. If the value of x comes out toless than 5% of 0.10dropping the term isjustified.

x = 1.34 x 10-3 so dropping the term was valid.

since x = [OH-] , pOH = -log(1.34 x 10-3) = 2.87

and pH = 14 – 2.87 = 11.13

11

A weak base, B, has a pKb of 5.82. Determine the pH of a 0.050 Msolution of B.

Hint: First write out the equilibrium expression of the

base in water.

B + H2O ↔ BH+ + OH-

12

A weak base, B, has a pKb of 5.82. Determine the pH of a 0.050 Msolution of B.

Now make a I.C.E. Chart and fill in the

values

B + H2O ↔ BH+ + OH-

I.

C.

E.

0.050 0 0

-x +x +x

0.050-x +x +x

13

A weak base, B, has a pKb of 5.82. Determine the pH of a 0.050 Msolution of B.

Determine the Kb and create an equilibrium expression from the

“E.” term.

B + H2O ↔ BH+ + OH-

I.

C.

E.

0.050 0 0

-x +x +x

0.050-x +x +x

Since pKb = 5.82. The value of Kb = 10-5.82 = 1.51 x 10-6

]B[]OH][BH[Kb

so: x050.0

x10x51.12

6

Try dropping the -x term. If the value of x comes out toless than 5% of 0.050dropping the term isjustified.

x = 2.75 x 10-4 so dropping the term was valid.

since x = [OH-] , pOH = -log(2.75 x 10-4) = 3.56

and pH = 14 – 3.56 = 10.44

14

15

16

Trimethlyamine, has a Kb of 6.4 x 10-5. Determine the pH of a 0.10 Msolution of trimethylamine. (CH3)3N

Hint: First write out the equilibrium expression of the

base in water.

(CH3)3N + H2O ↔ (CH3)3NH+ + OH-

17

Trimethlyamine, has a Kb of 6.4 x 10-5. Determine the pH of a 0.10 Msolution of trimethylamine. (CH3)3N

Now make a I.C.E. Chart and fill in the

values

(CH3)3N + H2O ↔ (CH3)3NH+ + OH-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

18

Trimethlyamine, has a Kb of 6.4 x 10-5. Determine the pH of a 0.10 Msolution of trimethylamine. (CH3)3N

Create an equilibrium expression from the

“E.” term.

(CH3)3N + H2O ↔ (CH3)3NH+ + OH-

I.

C.

E.

0.10 0 0

-x +x +x

0.10-x +x +x

]B[]OH][BH[Kb

so: x

xx

10.0104.6

25

Try dropping the -x term. If the value of x comes out toless than 5% of 0.10dropping the term isjustified.

x = 2.53 x 10-3 so dropping the term was valid.

since x = [OH-] , pOH = -log(2.53 x 10-3) = 2.60

and pH = 14 – 2.60 = 11.40

19

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