Chapter 15
Chapter 16
Chapter 17 and some other stuff
Acids/Bases
Extra
100

Write the equilibrium expression for KC for the following reaction:

a) 2 O3 (g) ↔ 3 O2 (g)

b) 2 NO (g) + Cl2 (g) ↔ 2 NOCl (g)

c) Ag+ (aq) +2 NH3 (aq) ↔ Ag(NH3)2+ (aq)

a) [O2]3 / [O3]2

b) [NOCl]2 / [NO]2 [Cl2]

c) [Ag(NH3)2+] / [Ag+] [NH2]2



100

Consider the equilibrium:

2 SO2 (g) + O2 (g) ↔ 2 SO3 (g)

If 0.200 mol SO3 (g) is placed in a 0.500 L container, it is found that 0.050 mole of O2 (g) is in the container at equilibrium. Determine Keq

10

100

Calculate [OH-] and indicate whether the solution is acidic, basic, or neutral.

[H+] = 7.9 x 10-3

[OH-] = 1.27 x 10-12 M

Basic

100

What are the 7 strong acids?

HCl, HBr, HI, HNO3, H2SO4, HClO3, HClO4

100

Consider the equilibrium:

N2O4 (g) ↔ 2 NO2 (g)         ∆HO = 58.0 kJ

In which direction will the equilibrium shift when 

a) N2O4 is added

b) NO2 is removed 

c) the pressure is increased by addition of N2 (g)

d) the volume is increased

e) the temperature is decreased

a) right

b) right

c) no shift

d) right

e) left

200

For the formula:

N2 (g) + 3 H2 (g) ↔ 2 NH(g)

KC = 9.60 at 300OC. Calculate KP for the reaction at this temperature.

4.34 x 10-3

200

At 985OC, the equilibrium constant, KC, for the reaction:

H2 (g) + CO2 (g) ↔ H2O (g) + CO (g), is 1.63. If 2.00 moles each of H2 and CO2 are placed in a 1.00 L container and allowed to come to equilibrium, determine the equilibrium concentrations of the 4 chemicals.

[H2] = 0.88 M

[CO2] = 0.88 M

[H2O] = 1.12 M

[CO] = 1.12 M

200

Calculate [OH-] and indicate whether the solution is acidic, basic, or neutral.

[H+] = 6.3 x 10-10

[OH-] = 1.59 x 10-5 M

Acidic


200
a) Given that Ka for acetic acid is 1.8 x 10-5 and that for hypochlorous acid is 3.0 x 10-8, which is the stronger acid?


b) Given that Kb for ammonia is 1.8 x 10-5 and that for hydroxylamine is 1.1 x 10-8, which is the stronger base?

a) acetic acid (larger Ka = stronger acid)

b) ammonia (larger Kb = stronger base)

200

For the reaction:

PCl5 (g) ↔ PCl3 (g) + Cl2 (g)        ∆HO = 87.9 kJ

in which direction will the equilibrium shift when

a) Cl2 (g) is removed

b) the temperature is decreased

c) the volume of the reaction system is increased

d) PCl3 (g) is added

a) right

b) left

c) right

d) left

300

Given the reactions:

HF (aq) ↔ H+ (aq) + F- (aq)  KC = 6.8 x 10-4

H2C2O4 (aq) ↔ 2 H+ (aq) + C2O42- (aq)  KC = 3.8 x 10-6

determine the value of KC for the reaction:

2 HF (aq) + C2O42- (aq) ↔ 2 F- (aq) + H2C2O4 (aq)


0.12

300

Consider the reaction:

NH3 (aq) + H2O (l) ↔ NH4+ (aq) + OH- (aq)

Keq = 1.8 x 10-5

What is the [OH-] in a 0.100 M solution of NH3 when it reaches equilibrium?

1.3 x 10-3 M

300

Calculate the pH of each of the following acid solutions.

a) 0.0534 M HNO3

b) 0.271 g of HClO4 in 1.90 L of solution

c) 5.00 mL of 1.00 M HCl diluted to 0.690 L 

d) a mixture formed by adding 50.0 mL of 0.020 M HCl to 125 mL of 0.010 M HI

a) 1.27

b) 2.85

c) 2.14 

d) 1.88

300
What is the stronger acid in each pair?


a) HNO2 or HNO3

b) H2O or H2S

a) HNO3 (more oxygen)

b) H2S (acidity increases as you go to the right and down the periodic table)

300

What is the conjugate base for the following:

a) CN-

b) SO42-

c) H2O


a) HCN

b) HSO4-

c) H3O+

400

After a mixture of hydrogen and nitrogen gases in a reaction vessel is allowed to attain equilibrium at 472OC, it is found to contain 7.38 atm H2, 2.46 atm N2, and 0.166 atm NH3. From these data, calculate the equilibrium constant KP for the reaction:

N2 (g) + 3 H2 (g) ↔ 2 NH3 (g) 

1.79 x 10-5

400

Calculate the equilibrium constant, Keq, for the following reaction at 25OC, if [NO] = 0.106 M, [O2] = 0.122 M, and [NO2] = 0.129 M.

2 NO (g) + O2 (g) ↔ 2 NO2 (g)

 

12.1

400

Calculate the pH of a solution formed by mixing 55 mL of 0.20 M NaHCO3 with 65 mL of 0.15 M Na2CO3.

10.20

400

What is the Lewis Acid and Lewis Base in the following equation:

NH3 + BF3 ↔ NH3BF3

LB = NH3

LA = BF3

400

What is the conjugate acid for the following:

a) HClO4

b) H2S

c) PH4+

a) ClO4-

b) HS-

c) PH3

500

At 1000 K the value of KP for the reaction 

2 SO3 (g) ↔ 2 SO2 (g) + O2 (g)

is 0.338. Calculate the value for QP, And predict the direction in which the reaction proceeds toward equilibrium if the initial partial pressures are 

PSO3 = 0.16 atm; PSO2 = 0.41 atm; PO2 = 2.5 atm

QP = 16

QP > KP so the rxn proceeds from right to left
500

For the equilibrium:

Br2 (g) + Cl2 (g) ↔ 2 BrCl (g)

at 400 K, KC = 7.0. If 0.25 mol of Br2 and 0.55 mol of Cl2 are introduced into a 2.5-L container at 400 K, what will be the equilibrium concentrations of Br2, Cl2, and BrCl?

[Br2] = 0.019 M

[Cl2] = 0.12 M

[BrCl] = 0.13 M

500

How many grams of sodium lactate (NaC3H5O3) should be added to 1.00 L of 0.150 M lactic acid (HC3H5O3) to form a buffer solution with pH 2.90? Assume that no volume change occurs when NaC3H5O3 is added.

1.9 g

500

What is the Lewis Acid and Lewis Base in the following equation:

Ag+ + Br2 ↔ AgBr2

LB = Ag+

LA = Br2

500

A 30.0 mL sample of 0.150 M propanoic acid (a monoprotic acid C3H7COOH, Ka = 1.3 x 10-5) is titrated with 0.300 M KOH. Calculate the following:

a. the initial pH of the acid

b. the equivalence point volume of the titration

c. the pH after adding 5.00 mL of KOH

d. the pH at the equivalence point

a. 5.71

b. 15.0 mL

c. 4.59

d. 8.94