Chemistry Grade 12 Textbook PDF

Summary

This textbook covers various key chemistry topics for Grade 12 students in Ethiopia. The content is organized into several units, encompassing acid-base equilibria, electrochemistry, industrial chemistry, polymers, and environmental chemistry. The textbook includes introductory activities, unit outcomes, and detailed explanations of important concepts.

Full Transcript

CHEMISTRY

CHEMISTRY
STUDENTS TEXTBOOK
CHEMISTRY
GRADE 12 Students Textbook
GRADE 12

STUDENTS TEXTBOOK
GRADE 12

FEDERAL DEMOCRATIC REPUBLIC OF ETHIOPIA MINSTRY OF EDUCATION FEDERAL DEMOCRATIC REPUBLIC OF ETHIOPIA MINSTRY OF EDUCATION
 የኢትዮጵያ ፌደራላዊ ዴሞክራሲያዊ ሪፐብሊክ

የትምህርት ሚኒስቴር
FEDERAL DEMOCRATIC REPUBLIC OF ETHIOPIA
MINISTRY OF EDUCATION

CHEMISTRY
STUDENT TEXTBOOK

GRADE 12
Writers
Hailu Shiferaw (PhD)
Muluken Aklilu (PhD)
Content Editor
Chala Regasa(MSc)
Instructional Design Editor
Taye Hirpassa (Bsc, MA)
Language Editor
Meseret Getnet(PhD)
Illustrator
Asresahegn Kassaye (MSc)
Book Designer
Daniel Tesfay (MSc)
Evaluators
Tolessa Mergo Roro (MSc., MEd)
Nega Gichile (BSc, MA)
Sefiw Melesse (MSc.)
 CHEMISTRY GRADE 12

CONTENTS

UNIT 1: ACID-BASE EQUILIBRIA

1.1 ACID-BASE CONCEPTS...........................................................3
1.1.1 Arrhenius concept of acids and bases...................................................3
1.1.2 Brønsted-Lowry Concept of Acids and Bases.......................................5
1.1.3 Lewis concept of acids and bases.......................................................... 11
1.2 IONIC EQUILIBRIA OF WEAK ACIDS AND BASES.......... 14
1.2.1 Ionization of water................................................................................. 14
1.2.1 Measures of the strength of acids and bases in aqueous solution....20
1.3 COMMON ION EFFECT AND BUFFER SOLUTION..........28
1.3.1 The Common ion Effect........................................................................28
1.3.2 Buffer Solutions....................................................................................... 31
1.4 Hydrolsis of Salts......................................................................35
1.4.1 Hydrolysis of Salts of Strong Acids and Strong Bases........................35
1.4.2 Hydrolysis of Salts of weak acids and strong bases............................36
1.4.3 Hydrolysis of Salts of strong acids and weak bases............................37
1.4.4 Hydrolysis of Salts of weak acids and week bases.............................37

1.5 Acid–Base Indicators and Titrations........................................38
1.5.1 Acid–Base Indicators..............................................................................38
1.5.2 Equivalents of Acids and Bases.............................................................40
1.5.3 Acid–Base Titrations..............................................................................41

UNIT 2: ELECTRO CHEMISTRY

2.1 OXIDATION-REDUCTION REACTIONS............................50
2.1.1 Oxidation................................................................................................50
2.1.2 Reduction...............................................................................................51
2.1.3 Balancing Oxidation-Reduction (Redox) Reactions.........................52
2.2 ELECTROLYSIS OF AQUEOUS SOLUTIONS...................... 57
2.2.1 Electrolytic cells.....................................................................................60
2.2.2 Preferential Discharge...........................................................................62
2.2.3 Electrolysis of Some Selected Aqueous Solutions...............................66
2.3 QUANTITATIVE ASPECTS OF ELECTROLYSIS.................72
2.3.1 Faraday’s First Law of Electrolysis........................................................72
2.3.2 Faraday’s Second Law of Electrolysis...................................................75
2.4 INDUSTRIAL APPLICATION OF ELECTROLYSIS............. 76
2.5 VOLTAIC CELLS...................................................................... 81

II
 UNIT 3: INDUSTRIAL CHEMISTRY

3.1 Introduction...........................................................................120
3.2 Natural Resources and Industry............................................ 122
3.2.1 Natural resources (Raw materials).....................................................122
3.2.2 Industry..................................................................................................123
3.3 Manufacturing of valuable products/ Chemicals.................. 125
3.3.1 Production of Ammonia (NH3).........................................................126
3.3.2 Nitric Acid Manufacturing Process...................................................133
3.3.3 Manufacturing of Sulphuric Acid.....................................................138
3.3.4 Nitrogen Based Fertilizers.................................................................. 141
3.3.5 Some Common Pesticide and Herbicides........................................144
3.3.6 3.3.7 Manufacturing of Sodium Carbonate.....................................148
3.3.7 3.3.8 Manufacturing of Sodium Hydroxide NaOH.........................150
3.4 Some Manufacturing Industries in Ethiopia........................ 152
3.4.1 3.4.1 Glass Manufacturing..................................................................153
3.4.2 Manufacturing of Ceramics...............................................................155
3.4.3 Cement...................................................................................................157
3.4.4 3.4.4 Sugar Manufacturing..................................................................159
3.4.5 Paper and Pulp...................................................................................... 161
3.4.6 Tannery..................................................................................................163
3.4.7 Food Processing and Preservation.....................................................164
3.4.8 Manufacturing of Alcoholic Beverages.............................................166
3.4.9 Soaps and Detergents..........................................................................172

UNIT 4: POLYMER

4.1 Introduction to polymers........................................................ 184
4.2 Classification of Polymers...................................................... 185
4.3 Polymerization Reactions....................................................... 193

III
 CHEMISTRY GRADE 12

UNIT 5: INTRODUCTION TO ENVIRONMENTAL

CHEMISTRY

5.1 Introduction...........................................................................206
5.1.1 Components of the Environment......................................................207
5.1.2 Natural Cycles in the Environment................................................... 210
5.1.3 Concepts Related to Environmental Chemistry...............................215
5.2 Environmental Pollution....................................................... 216
5.2.1 Air Pollution.......................................................................................... 217
5.2.2 Water Pollution.....................................................................................220
5.2.3 Land Pollution.......................................................................................221
5.2.4 Pollutants of the Environment............................................................223

5.3 Global Warming and Climate Change..................................224
5.3.1 Global Warming and Climate Change.............................................224
5.3.2 Chemistry of Greenhouses Gasses and their effects on Climate
change...............................................................................................226
5.4 Green Chemistry and Cleaner Production...........................228
5.4.1 Principle of Green Chemistry.............................................................230
5.4.2 Cleaner production in chemistry......................................................234

IV
 Acid-Base Equilibria

UNIT 1
ACID-BASE EQUILIBRIA
Unit outcomes

At the end of this unit, you will be able to:
 describe the draw backs of Arrhenius,
 define Bronsted-Lowery &Lewis concepts of acids & bases
 describe the dissociation of water, weak mono-protic & polyprotic acids,
& weak bases;
 solve equilibrium problems involving concentration of reactants &
products, ka, kb, PH& POH
 discuss the common ion effect, buffer solution, hydrolysis of salts, acid-
base indicators and acid-base titrations
 explain how buffering action affects our daily lives using examples
 determine the equivalents of acid or base that are required to neutralize
specific amount of acid or base
 predict, in qualitative terms, whether a solution of a specific salt will be
acidic, basic or neutral
 explain how to solve problems involving concentration and pH of acid-
base titration

1
 CHEMISTRY GRADE 12

Startup Activity

You have learnt the acid-base concepts and properties. Remember this and
discuss the following questions in group. After discussion write a report and
present to the class:
1. List the properties of acids and bases
2. What do you observe when the following indicators added in the solutions
listed in the table?

Color of indicator
Red Blue Phenol- Methyl
litmus litmus phthalein Orange
SOLUTION paper paper
acetic acid solution
hydrochloric acid solution
sodium chloride solution
ammonia solution
Lemon juice

The concepts of acids and bases are probably among the most familiar chemistry concepts.
The reason is that acids and bases have been used as laboratory chemicals for centuries, as
well as in the home. Common household acids include acetic acid ( CHCOOH , vinegar),

citric acid ( H 3C6 H 5O7 , in citrus fruits), and phosphoric acid ( H 3 PO4 , a flavoring in
carbonated beverages). Sodium hydroxide ( NaOH , drain cleaner) and ammonia ( NH 3 ,
glass cleaner), are household bases.

Weak acids and weak bases are important weak electrolytes. They are found in many
chemical and biological processes of interest. Amino acids, for example, are both weak
acids and weak bases. In this unit, we will learn some ways of expressing concentrations
of hydronium ions and of hydroxide ions in solutions of weak acids and weak bases. Then
you will examine equilibria involving these weak electrolytes. You will also see that the
indicators, used in titration, such as phenolphthalein, are weak acids or weak bases. Finally,
you will learn how to use these properties to select an appropriate indicator for a titration.

2
 Acid-Base Equilibria

1.1 ACID-BASE CONCEPTS
At the end of this subunit, you will be able to:
 define acid by the Arrhenius concept
 define base by the Arrhenius concept
 Describe the drawbacks of Arrhenius concept
 define acid by the Bronsted-Lowry concept;
 give examples of Bronsted-Lowry acids
 define base by the Bronsted-Lowry concept
 give examples of Bronsted-Lowry bases.
 explain what conjugate acids and conjugate bases are
 identify the acid-base conjugate pairs from the given reaction;
 write an equation for self-ionization of water and ammonia.
 explain what is meant by amphiprotic species
 give examples of reactions of amphiprotic species;
 define acid by the Lewis concept
 give examples of Lewis acids
 define base by the Lewis concept
 give examples of Lewis bases

 calculate pH from  H +  and  H +  from pH calculate pOH from

OH −  and OH −  from pOH

1.1.1 Arrhenius concept of acids and bases

Activity 1.1

Form groups and discuss the following questions and write a report of your
discussion.
1. Explain Arrhenius acid and base concepts using suitable examples?
2. Does hydrogen ion exist freely in water?
3. What are the drawbacks of the Arrhenius’ concepts of acids and bases?

3
 CHEMISTRY GRADE 12

The Swedish chemist Svante Arrhenius framed the first successful concept of acids and
bases. He defined acids and bases in terms of the effect these substances have on water.
According to Arrhenius, acids are substances that increase the concentration of H + (proton
ion) in aqueous solution, and bases increase the concentration of OH − (a hydroxide ion)
in aqueous solution.

In Arrhenius’s theory, a strong acid is a substance that completely ionizes in aqueous

solution to give H 3O + (aq) and an anion. An example is perchloric acid, HClO4
HClO4 (aq ) + H 2O(l ) → H 3O + (aq ) + ClO4 − (aq )

Other examples of strong acids are H 2 SO4 , HI , HBr , HCl , and HNO3. A strong base
completely ionizes in aqueous solution to give OH − and a cation. Sodium hydroxide is an
example of a strong base.
NaOH ( s ) 
H 2O
→ Na + (aq ) + OH − (aq )
The principal strong bases are the hydroxides of Group IA elements and Group IIA elements
(except Be). Despite its early successes and continued usefulness, the Arrhenius theory
does have limitations.

Exercise 1.1
1. Based on their dissociations in water solution, classify each of the
following compounds as Arrhenius acid, Arrhenius base, or as a compound
that cannot be classified as an Arrhenius acid or Arrhenius base.

a.
HBr (aq ) + H 2O(l ) → H 3O + (aq ) + 2 Br − (aq )

b. NaCl ( s ) + H O(l ) → Na + (aq ) + Cl − (aq )

+ −
c. NH 3 (l ) + H 2O(l ) → NH 4 (aq ) + OH (aq )

+ −
2. NaOH (aq ) + H 2O(l ) → Na (aq ) + 2OH (aq )

4
 Acid-Base Equilibria

1.1.2 Brønsted-Lowry Concept of Acids and Bases

Activity 1.2

From what you have learnt in Grade 10 chemistry, discuss the following
questions.
1. How does Brønsted-Lowry concept of acids and bases differ from
Arrhenius definition? What are the similarities?
2. Give two Brønsted-Lowry bases that are not Arrhenius bases.
3. Are there any Brønsted acids that do not behave as Arrhenius acids?
Consider the ionization of hydrochloric acid in water:

O
H + H Cl H H + Cl
O
H
H
Which one is a Brønsted-Lowry acid and which one is a Brønsted-Lowry basem?
In 1923, J. N. Brønsted in Denmark and T. M. Lowry in Great Britain independently
proposed a new acid base theory. They pointed out that acid–base reactions can be seen as
proton-transfer reactions and those acids and bases can be defined in terms of this proton
(H) transfer. According to their concept, an acid is a proton donor and a base is a proton
acceptor.

Let’s use the Brønsted–Lowry theory to describe the ionization of ammoniain aqueous
solution

In this reaction water acts as an acid. It gives up a proton (H+) to NH 3 , a base. As a

result of this transfer the polyatomic ions NH 4 + and OH − are formed- the same ions

produced by the ionization of the hypothetical NH 4OH of the Arrhenius theory.
However, they cannot be called Arrhenius bases since in aqueous solution they do
not dissociate to form OH −. The advantage of this definition is that it is not limited
to aqueous solutions. Bronsted-Lowry acids and bases always occur in pairs called
conjugate acid base pairs.

5
 CHEMISTRY GRADE 12

1.1.2.1 Conjugate acid-base pairs

Conjugate acid-base pairs can be defined as an acid and its conjugate base or a base and its
conjugate acid. The conjugate base of a Brønsted-Lowry acid is the species that remains
when one proton has been removed from the acid. Conversely, a conjugate acid results
from the addition of a proton to a Brønsted-Lowry base. Every Brønsted-Lowry acid has
a conjugate base, and every Brønsted- Lowry base has a conjugate acid. For example,
the chloride ion (Cl − ) is the conjugate base formed from the acid HCl , and H 2O is the
conjugate base of the acid H 3O +. Similarly, the ionization of acetic acid can be represented
as

Conjugate acid - base pair

CH 3COOH (aq )+ H 2O(l )  CH 3COO − (aq ) + H 3O + (aq )
Acid Base Base Acid
Conjugate acid - base pair

In the above reaction, CH 3COOH acts as an acid. It gives up a proton, H + , which is taken

up by H 2O. Thus, H 2O acts as a base. In the reverse reaction, the hydronium ion, H 3O +

, acts as an acid and CH COO − acts as a base. When CH 3COOH loses a proton, it is

converted into CH 3COO −. Notice that the formulas of these two species differ by a single
proton, H +. Species that differ by a single proton ( H + ) constitute a conjugate acid–base
pair. Within this pair, the species with the added H + is the acid, and the species without the
H + is the base..For any conjugate acid-base pair,

 The conjugate base has one fewer H and one more minus charge than the acid.
 The conjugate acid has one more H and one fewer minus charge than the base.

6
 Acid-Base Equilibria

Table 1.1: The conjugate pairs in some Acid-Base Reactions.

Conjugate pair

Acid + Base ⇌ Base + Acid

Conjugate pair

HF + H 2O F- + H3O+
HCOOH + CN- HCOO- + HCN
NH4+ + CO32- NH3 + HCO3-
H2PO4- + OH- HPO4- + H 2O
H2SO4 + N 2H 5+ HSO4- + N2H62+
HPO42- + SO32- PO43- + HSO3-

Example 1.1
For each of the following reactions, which occur in aqueous solution, identify
the Brønsted-Lowry acids and bases and their respective conjugates in each of
the following reactions.
a. NH 3 + H 2 PO4 −  NH 4 + + HPO4 2 −
b. HCl + H 2 PO4 −  Cl − + H 3 PO4
Solution:
To identify Brønsted-Lowry acids and bases, we look for the proton donors and
proton-acceptors in each reaction.
a. H 2 PO4 − is converted to HPO4 2 − by donating a proton. So, H 2 PO4 − is an acid,
and HPO4 2 − is its conjugate base. NH 3 accepts the proton lost by the H 2 PO4 −.As a result, NH 3 is a base, and NH 4 + is its conjugate acid.

NH 3 + H 2 PO4 −  NH 4 + + HPO4 2−
Base Acid Acid Base
b H 2 PO4 − accepts a proton from HCl. Therefore, H 2 PO4 − is a base and H 3 PO4
is its conjugate acid. HCl donates a proton to H 2 PO4 −. Thus, HCl is an acid,
and Cl − is its conjugate base

HCl + H 2 PO4 −  Cl − + H 3 PO4
Acid Base Base Acid

7
 CHEMISTRY GRADE 12

Exercise 1.2
1. Identify the Brønsted-Lowry acids, bases, conjugate acids and conjugate
bases in each of the following reaction

− +
b. HClO2 + H 2O  ClO2 + H 3O
− −
c. OCl + H 2O  HOCl + OH
2− − −
d. H 2O + SO3  OH + HSO3

Strengths of Conjugate Acid-Base Pairs

How do you know the strengths of conjugate acid- base pairs?

The net direction of an acid-base reaction depends on relative acid and base strengths: A
reaction proceeds to the greater extent in the direction in which a stronger acid and stronger
base form a weaker acid and weaker base. The stronger the acid, the weaker is its conjugate
base. Similarly, the stronger the base, the weaker is its conjugate acid. For example, HCl

is a strong acid, and its conjugate base Cl − , is a weak base. Acetic acid, CH 3COOH , is a

weak acid, and its conjugate base, CH 3COO − ,is a strong base. The following chart shows
the strength of conjugate acid-base pairs.

8
 Acid-Base Equilibria

Chart 1.1: Strengths of Conjugate Acid-Base Pairs.

9
 CHEMISTRY GRADE 12

1.1.2.2 Auto ionization of substances

Name the ions present in water. How are they formed?

Molecular auto ionization (or self-ionization) is a reaction between two identical neutral
molecules, especially in a solution, to produce an anion and a cation. If a pure liquid partially
dissociates into ions, it is said to be self-ionizing. Water, as we know, is a unique solvent.
One of its special properties is its ability to act either as an acid or as a base. Water functions

as a base in reactions with acids such as HCl and CH 3COOH , and it functions as an acid

in reactions with bases such as NH 3. Water is a very weak electrolyte and therefore a poor
conductor of electricity, but it does undergo ionization to a small extent:

2 H 2O(l )  H 3O + (aq ) + OH − (aq )

H
H
O H O H
O H + O H
H
H Base
Base Acid Acid

This reaction is sometimes called the auto ionization of water. Note that, in this reaction,
some water molecules behave as acids, donating protons, while the other water molecules
behave as bases, accepting protons.

1.1.2.3 Amphiprotic Species

Do you think that a molecule or an ion can be both a donor or acceptor of protons?

Molecules or ions that can either donate or accept a proton, depending on the other reactant,

are called amphiprotic species. For example, HCO3− acts as an acid in the presence of
OH − but as a base in the presence of HF. The most important amphiprotic species is water
itself. When an acid donates a proton to water, the water molecule is a proton acceptor,
and hence a base. Conversely, when a base reacts with water, a water molecule donates a
proton, and hence acts as an acid. Consider, for example, the reactions of water with the

base NH 3 and with the acid CH 3COOH (acetic acid)

10
 Acid-Base Equilibria

-
NH3(aq) + H 2O(l) NH4+(aq) + OH (aq)
acid acid base
base

-
H C2H3O2(aq) + H2O(aq) C2H3O2 (aq) + H3O+(aq)
acid base base acid

In the first case, water reacts as an acid with the base NH 3. In the second case, water

reacts as a base with the acid CH 3COOH.

Exercise 1.3
1. Define each of the following terms and give examples for each.
a. autoionization b. amphiprotic species
2. Write equations to show the amphiprotic behavior of
a H 2 PO4 − b. H 2O
3. Predict the relative strengths of each of the following groups:
− −
a. OH − , Cl − , NO , CH 3COO , and NH 3
b. HClO4 , CH 3COOH , HNO3 and HCl
3. What is the weakness of the Brønsted-Lowry acids and bases theory?
4. Write the self-ionization of ammonia.

1.1.3 Lewis concept of acids and bases

Activity 1.3

Form groups and discuss the following questions and report the result of
your discussion to your teacher.
1. What is the main difference between Lewis acid -base and Brønsted-
Lowry acid - base concepts?
2. Are all Brønsted-Lowry acids and bases are also acids and bases
according to Lewis concept?
3. Is there any limitation to the Brønsted-Lowry definition of acids and
bases? Explain if any

11
 CHEMISTRY GRADE 12

G. N. Lewis, who proposed the electron-pair theory of covalent bonding, realized that the
concept of acids and bases could be generalized to include reactions of acidic and basic
oxides and many other reactions, as well as proton-transfer reactions. According to this
concept, the Lewis acid-base definition holds that

 A base is any species that donates an electron pair to form a bond.
 An acidis any species that accepts an electron pair to form a bond.
Consider, for example, the reaction of boron trifluoride with ammonia
H F H
F

+ N H F B N H
B F

H F H
F
Lewis acid Lewis base

The boron atom in boron trifluoride, BF3 , has only six electrons in its valance shell and

needs two electrons to satisfy the octet rule. Consequently, BF3 (Lewis acid) accepts a

pair of electrons from NH 3 (Lewis base). This example suggests that in a Lewis acid-base
reaction, we should look for:
1. a species that has an available empty orbital to accommodate an electron pair such

as the B atom in BF3 , and

2. a species that has lone-pair electrons such as N in NH 3
The Lewis definition allows us to consider typical Brønsted-Lowry bases, such as
OH − , NH 3 , and H 2O , as Lewis bases. They all have electron pairs available to
donate for electron-deficient species. Note that any molecule or negatively charged
species having an excess of electrons can be considered as a Lewis base, and any
electron-deficient molecule or positively charged species can be considered as a
Lewis acid.

12
 Acid-Base Equilibria

Example 1.2
1. Identify the acid and the base in each Lewis acid–base reaction.
BH 3 + (CH 3 ) 2 S → H 3 BS (CH 3 ) 2

CaO + CO2 → CaCO3

BeCl2 + 2Cl − → BeCl4 2−

Solution:
In BH 3 , boron has only six valence electrons. It is therefore electron deficient and
can accept a lone pair of electrons. Like oxygen, the sulfur atom in (CH 3 ) 2 S has
two lone pairs. Thus (CH 3 ) 2 S donates an electron pair on sulfur to the boron atom
of BH 3. The Lewis base is (CH 3 ) 2 S , and the Lewis acid is BH 3.
CO2 accepts a pair of electrons from the O 2− ion in CaO to form the carbonate
ion. The oxygen in CaO is an electron-pair donor, so CaO is the Lewis base.
Carbon accepts a pair of electrons, so CO2 is the Lewis acid.
The chloride ion contains four lone pairs. In this reaction, each chloride ion
donates one lone pair to BeCl2 , which has only four electrons around Be. Thus,
the chloride ions are Lewis bases, and BeCl2 is the Lewis acid.
2. Identify the acid and the base in each Lewis acid–base reaction.
(CH 3 ) 2 O + BF3 → (CH 3 ) 2 O : BF3
H 2O + SO3 → H 2 SO4

Solution
Lewis’s base: (CH 3 ) 2 O ; Lewis’s acid: BF3
Lewis’s base: H 2O ; Lewis’s acid: SO3

Exercise 1.4
1. Identify Lewis acids and Lewis bases in each of the following reactions.
a. H + + OH −  H 2O
b. Cl − + BCl3  BCl4 −
c. K + + 6 H 2O  K ( H 2O)6 +
d. OH − + Al (OH )3  Al (OH ) 4 −
e. CO2 + H 2O  H 2CO3
f. Ni + 4CO  Ni (CO) 4

13
 CHEMISTRY GRADE 12

1.2 IONIC EQUILIBRIA OF WEAK ACIDS AND BASES
At the end of this subunit, you will be able to:
 describe the ionization of water;

 derive the expression of ion product for water, K w
 explain why water is a weak electrolyte;

 use K w to calculate  H 3O +  or OH −  in aqueous solution;
 write an expression for the percent ionization of weak acids or weak
bases;
 calculate the percent dissociation of weak acids and bases;

 write the expression for the acid-dissociation constant, K a ;

 calculate K a for an acid from the concentration of a given solution and
it’s pH ;

 calculate  H +  and pH of an acidic solution from given values of K a
and the initial concentration of the solution;

 write the expression for the base-dissociation constant, K b ;

 calculate K b for a base from the concentration of a basic solution and its
pOH ; and
OH − 
 calculate the and pOH of a basic solution from a given value of
K b and the initial concentration of the solution.

1.2.1 Ionization of water

How do you calculate the concentration of H 3O + ions if the concentrations of OH − ions
and K w at 25°C are given?

Although pure water is often considered a non-electrolyte (nonconductor of electricity),
precise measurements do show a very small conduction. This conduction results from
self-ionization (or autoionization) of water, a reaction in which two like molecules react

to give ions. The H 2O molecule can act as either an acid or a base; it is amphiprotic. It

should come as no surprise that amongst themselves water molecules can produce H 3O +
and OH − ions via the following self-ionization reaction or autoionization reaction:

14
 Acid-Base Equilibria

H 2O(l ) + H 2O(l )  H 3O + (aq ) + OH − (aq )

Like any equilibrium process, the auto-ionization of water is described quantitatively by
an equilibrium constant:

 H 3O +  OH − 
Kc =
[ H 2O ]
2

Because the concentration of ions formed is very small and the concentration of H 2O

remains essentially constant, about 56 Mat 25oC, we multiply Kc by [ H 2O ] to obtain a
2

new equilibrium constant, the ion-product constant for water, K w :

[ H 2=
O] Kc =  H 3O +  OH − 
2
constant

We call the equilibrium value of the ion product  H 3O +  OH −  , the ion-product constant

for water, K w. At 25oC, the value of K w is 1.0 x 10-14. Like any equilibrium constant, K w

varies with temperature. At body temperature (37oC), K w equals 2.5 x 10-14.

=K w =
H 3O +  OH −  1.0 x 10−14 at 25 oC

Because we often write H + (aq ) for H 3O + (aq ) , the ion-product constant for water can be
written

K w =  H 3O +  OH − 

Using K w , you can calculate the concentrations of H 3O + and OH − ions in pure water.
These ions are produced in equal numbers in pure water, so their concentrations are equal.

Let x =
= H 3O +  OH − . Then, substituting into the equation for the ion-product

constant, K w =  H 3O +  OH −  you get at 25 oC, 1.0 x 10-14 = x2 hence x equals 1.0 x 10-7.

Thus, the concentrations of H O + and OH − are both 1.0 x 10 -7 M in pure water.

If you add an acid or a base to water, the concentrations of H 3O + and OH − will no longer

be equal. The equilibrium-constant equation K w =  H 3O +  OH −  will still hold.

15
 CHEMISTRY GRADE 12

In any aqueous solution at 25°C, no matter what it contains, the product of  H +  and

OH −  must always equal 1.0 × 10–14.
The equilibrium nature of auto-ionization allows us to define “acidic” and “basic” solutions

in terms of relative magnitudes of  H 3O +  and OH −  :

i. a neutral solution, where  H 3O +  = OH − .

ii. an acidic solution, where  H 3O +  > OH − .

iii. a basic solution, where OH −  >  H 3O + 

Activity 1.4
Form a group and discuss the following. Write a report on the discussion and
present to the class. Many substances undergo auto-ionization in analogous
to water. For example, the auto-ionization of liquid ammonia is:–
2NH 3  NH 4 + + NH 2 −
a. Write K c expression for auto-ionization of ammonia that is analogous
to the K w expression for water.
b. Name the strongest acids and strongest bases that can exist in liquid
ammonia?
c. For water, a solution with OH −  <  H 3O +  is acidic. What are the
analogous relationships in liquid ammonia?

Example 1.3
A research chemist adds a measured amount of HCl gas to pure water at 25 0Cand
obtains a solution with  H O 

+ -4
 = 3.0 x 10 M. Calculate OH − . Is the solution neutral,
acidic, or basic?

Solution: We use the known value of K w at 25 0C (1.0 x 10─14) and the given
 H 3O +  (3.0x10-4M) to solve for OH − . Then we compare  H 3O +  with OH − 
to determine whether the solution is acidic, basic, or neutral

Kw 1.0 x 10−14
OH − 
Calculate for the= = = −4
3.3 x 10−11 M
 H 3O 
+
3.0 x 10

Because  H 3O +  > OH −  , the solution is acidic

16
 Acid-Base Equilibria

Exercise 1.5
1. Calculate  H +  or OH −  , as required, for each of the following solutions
at 25°C,and state whether the solution is neutral, acidic, or basic.
a.  H +  = 1.0 x 10−7 M b. OH −  = 1.0 x 10−4 M
c. OH −  = 1.0 x 10−8 M
2. Calculate the concentration of OH − in a solution in which
a.  H 3O +  = 2.0 x 10−5 M b.  H 3O +  = OH − 
c.  H 3O +  = 102 x OH − 
3. Calculate  H 3O +  in a solution that is at 25°C and has OH −  = 6.7 x 10−2 M. Is the solution neutral, acidic, or basic?
4. At 40°C, the value of K w is 2.92 × 10–14. Calculate the  H +  and OH − 
of pure water at 40°C.
5. Why water is a weak electrolyte?
The pH scales
It is a well-known fact that whether an aqueous solution is acidic, neutral, or basic
depends on the hydronium-ion concentration. You can quantitatively describe the acidity
by giving the hydronium-ion concentration. But because these concentration values may
be very small, it is often more convenient to give the acidity in terms of pH , which is
defined as the negative of the logarithm of the molar hydronium-ion concentration. pH
is a measure of the hydronium ion content of a solution. It is also restated in terms of

 H 3O + .

− log  H 3O +  or pH =
pH = − log  H + 

Thus, in a solution that has  H 3O +  = 2.5 x 10−3 M

− log(2.5 x 10−3 ) =
pH = 2.60
Note that the negative logarithm gives us positive numbers for pH. Like the equilibrium
constant, the pH of a solution is a dimensionless quantity.

To determine the  H 3O +  , that corresponds to a particular pH value, we do an inverse
calculation. In a solution with pH = 4.5,

log  H 3O +  = − 4.50 and  H 3O +  =10−4.50 = 3.2 x 10−5 M
The pH of a solution is measured by a pH - meter.

17
 CHEMISTRY GRADE 12

Figure 1.1: pH -meter.
A pH meter is commonly used in the laboratory to determine the pH of a solution.
Although many pH meters have scales marked with values from 1 to 14, pH values
can, in fact, be less than1 and greater than 14.
pH value decreases as the concentration of H + ions increase; in other words, the more
acidic the solution, the lower its pH ; the more basic the solution, the higher its pH.
For a neutral solution, pH = 7 Acidic solutions have pH < 7 Basic solutions have
pH > 7

Activity 1.5
In your group, measure the pH of the following substances, using a pH-meter.
Copy and fill in the following table. Compare your results with those of other
groups. Find the pH values of the substances in reference books and other
sources and compare your results with the values you observed.

Substance Acidic, Basic or Neutral
pH
Beer
Milk of magnesia
Tomato juice
Lemon juice
Drinking water

18
 Acid-Base Equilibria

The pH notation has been extended to other exponential quantities. A pOH scale
analogous to the pH scale can be devised using the negative logarithm of the hydroxide
ion concentration of a solution. Thus, we define pOH as:

pOH = − log OH − 
If we are given the pOH value of a solution and asked to calculate the OH − ion
concentration, we can take the antilog of the above equation as follows

OH −  = 10− pOH
Another useful expression can be derived by taking the negative logarithmof the

expression (written for 25 °C) and introducing the symbol pK w = − log K w. Now

=
consider again the ion product for water at 25°C. K w =
H 3O +  OH −  1.0 x 10−14
Taking the negative logarithm of both sides, we obtain

- (log  H 3O +  + log OH -  ) =
- log(1.0 x 10-14 )

− log  H 3O +  = − log OH −  =
14
From the definition of pH and pOH we obtain: pH + pOH =
14
Thus, in general, the sum of the pH and pOH values must equal pK w. This equation
provides us with another way to express the relationship between the H + ion concentration
and the OH − - ion concentration.

Example 1.4
Calculate:
a. the pH and pOH of a juice solution in which  H 3O +  is 5.0 ×10–3 M
b. the  H 3O +  and OH −  of human blood at pH = 7.40
Solution:
 H 3O +  = 5.0 x 10−3 M
a.
= pH ?= and pOH ?
pH = − log  H 3O +  = − log(5.0 x 10−3 )
= 3 − log 5.0 =2.3
pH + pOH =
14
pOH= 14 − pH
pOH= 14 − 2.3

19
 CHEMISTRY GRADE 12

= 11.7

b. pH =7.40, pOH =
14 − 7.40 =6.6
 H 3O +  ?=
= OH −  ?
pH = − log  H 3O +  and pOH =
− log[OH − ]
log  H 3O +  =
−7.40 and log[OH − ] =
−6.6
 H 3O=
+
 10−=
7.40
4.0 x 10−8 M and [OH
= −
=
] 10 −6.6
2.51 x 10−7 M

Exercise 1.6
1. A solution formed by dissolving an antacid tablet has a pH of 9.18 at
25°C. Calculate
 H + 
,

OH −  and pOH.

A solution is prepared by diluting concentrated HNO3 to 2.0 M, 0.30 M and
0.0063 M HNO3 at 25°C. Calculate  H +  , OH −  , pH and pOH of the
three solutions.

1.2.1 Measures of the strength of acids and bases in
aqueous solution

The strength of acids and bases depends on a number of factors. Some of the ways to
compare the strengths of acids and bases are the concentration of hydrogen and hydroxide

ions, pH and pOH , percent dissociation, K a and K b for the reaction describing its
ionization in water.

1.2.1.4 Concentration of hydrogen and hydroxide ions

How do the concentration of hydrogen and hydroxide ions affect acid and base strength?

By definition a strong acid is one that completely dissociates in water to release proton. In
solutions of the same concentration, stronger acids ionize to a greater extent, and so yield

higher concentrations of hydronium ions ( H 3O + ) than do weaker acids. Examples of the

strong acids are: hydrochloric acid ( HCl ) , nitric acid ( HNO3 ) , perchloric acid ( HClO4 )

, and sulfuric acid ( H 2 SO4 ). Each of these acids ionize essentially 100% in solution. By
contrast, however, a weak acid, being less willing to donate its proton, will only partially

20
 Acid-Base Equilibria

dissociate in solution. Base strength refers to the ability of a base to accept protons. A
strong base accepts more protons readily than a weak base. A solution of a stronger base
will contain a larger concentration of hydroxide ions than a solution of a weaker base if
both solutions are of equal concentration.

The net direction of an acid-base reaction depends on relative acid and base strengths: a
reaction proceeds to the greater extent in the direction in which a stronger acid and stronger
base form a weaker acid and weaker base.

Activity 1.6
By referring to this text book and other chemistry books, list strong acids,
strong bases, weak acids and weak bases. Then discuss what you have written
with the rest of the class. What is the reason of your classification of acids
and bases as strong and weak?

1.2.1.5 pH and pOH

If the pH of a solution at 25°C is 2, is it acidic, neutral or basic?
One way to determine the strength of acids is using the pH values. The smaller the pH
value, the stronger the acid. The concentration of hydroxide ions in a solution can be
expressed in terms of the pOH of the solution. Hence, the strength of bases can also be
determined from their pOH values. The smaller the pOH value, the stronger the base.

1.2.1.6 Percent Ionization

How is the percent ionization and acid strength related?
Another measure of the strength of an acid is its percent ionization, which is defined asthe
proportion of ionized molecules on a percentage basis. Mathematically:

Ionized acid concentration at equilibrium
Percent ionization = x 100 %
Initial concentration of acid
The strength of an acid depends on the percentage of the acid molecules that dissociate
inwater solution. The stronger the acid, the greater the percent ionization.Strong acids and
strong bases ionize nearly completely in water. But weak acids and weak bases dissociate
partially in water, and their percent of ionization is small.

21
 CHEMISTRY GRADE 12

1.2.1.7 Dissociation (Ionization) Constants

Acid ionization Constant, K a

What is the relationship between strength of acids with their acid-dissociation constant
values?

The acid Ionization constant or dissociation constant is a quantitative measure of the
strength of an acid in solution. It is the equilibrium constant for the reaction of dissociation
of acid into its conjugate base and hydrogen ion. Acid dissociation constant of weak acid
HA like acetic acid, formic acid can be written as:

HA(aq ) + H 2O(l )  H 3O + (aq ) + A− (aq )
the dissociation-constant expression can be written as:

 H 3O +   A− 
K=
[ H 2O ][ HA]
Since the concentration of water is nearly constant, we can write;

 H 3O +   A− 
K [ H 2O ] =
[ HA]

The product of the two constants, K and [ H 2O ] , is itself a constant. It is designated as Ka,
which is the acid-dissociation constant or the acid-ionization constant. Hence for a weak
acid, HA :

 H 3O +   A− 
Ka =
[ HA]
Acids are classified as either strong or weak, based on their ionization in water. Therefore,

the numerical value of K a is a reflection of the strength of the acid. Acids with relatively

higher K a values are stronger than acids with relatively lower K a values. The ionization-
constants of some weak monoprotic acids are tabulated in table 1.2

22
 Acid-Base Equilibria

Table 1.2: Ionization constant of some weak monoprotic acids at 25°C.
Name of the Acid Formula Ka
Acetic acid CH 3COOH 1.8 × 10–5

Ascorbic acid C6 H 8O6 8.0 × 10–5

Benzoic Acid C6 H 5COOH 6.5 × 10–5
Formic acid HCOOH 1.7 × 10–4
Hydrocyanic acid HCN 4.9 × 10–10
Hydrofluoric acid HF 6.8 × 10–4
Hypobromous acid HOBr 2.5 × 10–9
Hypochlorous acid HOCl 3.0 × 10–8
Nitrous acid HNO2 4.5 × 10–4

Example 1.5
1. A 0.250 M aqueous solution of butyric acid is found to have a pH of 2.72.
Determine K a for butyric acid
Solution:
CH 3 (CH 2 ) 2 COOH (aq ) + H 2O(l )  H 3O + (aq ) + CH 3 (CH 2 ) 2 COO − (aq )
Initial conc. 0.250 M ------- -------
Changes −x +x +x
equilib. conc. 0.250 M − x x x
x is a known quantity, It is the  H 3O  in solution, which we can determine
+

from the pH.
log  H 3O +  =
− pH =
−2.72
 H= +
3O 
 10
= −2.72
1.9 x 10−3 M
Now we can solve the following expression for K w by substituting in the value x
= 1.9 x 10 -3 M
(1.9 x 10−3 )(1.9 x 10−3 )
=Ka = −3
1.5 x 10−5
0.250 − 1.9 x 10
2. Calculate the pH of a 0.50 M HF solution at 25°C. The ionization of HF is
given by
HF (aq ) + H 2O(l )  H 3O + (aq ) + F − (aq )
Solution: The species that can affect the pH of the solution are HF , and the
conjugate base F − , Let x be the equilibrium concentration of H 3O +
and F − ions in molarity (M). Thus,

23
 CHEMISTRY GRADE 12

HF (aq ) + H 2O(l )  H 3O + (aq ) + F − (aq )
Initial conc. 0.50 ----- -----
Changes −x +x +x
Equil. conc. 0.50 − x x x

 H 3O +   F − 
Ka = 
[ HF ]
Substituting the concentration of HF , H+ and F − , in terms of x, gives:
( x)( x)
=Ka = 6.8 x 10−4
0.50 − x
Rearranging this expression provides:
x2 + (6.8 × 10–4 ) x – 3.4 × 10–4 = 0
This is a quadratic equation that can be solved, using the quadratic formula, or
youcan use the approximation method for x. Because HF is a weak acid, and
weak acids ionize only to a slight extent, x must be small compared to 0.50.
Therefore, you can make this approximation: 0.50 − x ≈ 0.50
Now, the ionization constant expression becomes
x2 x2
≈ = 6.8 x 10−4
0.50 − x 0.50
Rearranging this equation gives:
= =
x 2 (0.50)(6.8 x 10−4 ) 3.4 x 10−4
=x 3.4 x 10−4 1.8 x 10−2 M
=
Thus, we have solved for x without using the quadratic equation. At equilibrium,
we have
[ HF ] =
(0.50 − 0.018) M =
0.48 M

=  F −  =
H 3O +  0.018 M
and the pH of the solution is
pH =
− log(0.018) =
1.74
How good is this approximation? Because K a values for weak acids are generally
known to an accuracy of only ± 5%, it is reasonable to require x to be less
than 5 % of 0.50, the number from which it is subtracted. In other words, the
approximation is valid if the percent ionization is equal to or less than 5%.
0.018
x 100 % = 3.6 % Is the approximation valid?
0.50

24
 Acid-Base Equilibria

Example: 1.6
1. Only a small fraction of a weak acid ionizes in aqueous solution. What is the
percent ionization of

acetic acid in a 0.100M solution of acetic acid, CH 3COOH ?
Solution:
CH 3COOH (aq ) + H 2O(l )  H 3O + (aq ) + CH 3COO − (aq ), K a =
1.8 x 10−5
Initial conc. 0.100 M ----- -----
Changes -x +x +x
Equilib conc. 0.100 M - x x x
x is a known quantity, it is  H 3O +  in solution, which we can determine from
the K a
 H 3O +  CH 3COO − 
Ka =
[CH 3COOH ]

Substituting the concentration of CH 3COOH , H 3O + and CH 3COO − , in terms of
x, gives:
( x)( x)
Ka =
(0.100 − x)

−5 x2
1.8 x 10 =
0.100 − x

Since CH 3COOH is a weak acid, and weak acids ionize only to a slight extent, x
must be small compared to 0.10. Therefore, you can make the approximation:
0.10 − x ≈ 0.10.
Now, the equation becomes (1.8 x 10−5 )(0.100) = x 2

=x 1.8 x 10−6 1.342 x 10−3
=
1.342 x 10−3
=
Percent ionization = x 100 % 1.342 %
0.100

How do you calculate the pH of weak acids?
Generally, we can calculate the hydrogen-ion concentration or pH of an acid solution at

equilibrium, given the initial concentration of the acid and its K a value.

25
 CHEMISTRY GRADE 12

Exercise 1.7
Calculate the percent ionization of a 0.10M solution of acetic acid with a
pH of 2.89.
Calculate the pH of a 0.10 M solution of acetic acid. Ka = 1.8 x 10-5
For a 0.036 MHNO 2 solution.
a. Write a chemical equation that shows the ionization of nitrous acid in water.
b. Calculate the equilibrium concentration of hydrogen ions and nitrous
acid at 25°C, using the approximation method. Then check whether the
approximation is valid or not.
c. If the approximation is invalid, use the quadratic formula to calculate the
concentration of hydrogenions.
d. Calculate the pH of the solution.

Base dissociation constant, K b
Equilibria involving weak bases are treated similarly to those for weak acids. Ammonia,
for example, ionizes in water as follows:

NH 3 (aq ) + H 2O(l )  NH 4 + (aq ) + OH − (aq )
The corresponding equilibrium constant is:

 NH 4 +  OH − 
Kc =
[ NH 3 ][ H 2O ]
Because the concentration of H 2O is nearly constant, you can rearrange this equation as
you did for acid ionization.

 NH 4 +  OH − 
= c[
K b K= H 2 ]
O
[ NH 3 ]
where K b is the base dissociation constant.
In general, a weak base B with the base ionization

B (aq ) + H 2O(l )  HB + (aq ) + OH − (aq )

has a base-ionization constant, K b (the equilibrium constant for the ionization of a weak
base), equal to:

 HB +  OH − 
Kb =
[ B]
Note that K b values for strong bases are large, while K b values for weak bases are small.

26
 Acid-Base Equilibria

Table 1.3: shows the K b values of some common weak bases at 25°C
Base Formula
Kb
Ammonia 1.8 × 10–5
NH 3
Aniline 4.0 × 10–10
C6 H 5 NH 2
Ethylamine 4.7 × 10–4
C2 H 5 NH 2
Hydrazine 1.7 × 10–6
C2 H 4
Hydroxylamine 1.1 × 10–6
NH 2OH
Methylamine 4.4 × 10–4
CH 3 NH 2
Pyridine 1.7 × 10–9
C5 H 5 N
In solving problems involving weak bases, you should follow the same guidelines as you

followed for weak acids. The main difference is that we calculate OH −  first, instead of

 H + 

Example 1.7
What is the hydronium-ion concentration of a 0.20 M solution of ammonia in water?
Kb = 1.8 × 10–5
Solution: NH 3 (aq ) + H 2O(l )  NH 4 + (aq ) + OH − (aq )
initial conc. 0.20 M ----- -----
changes −x +x +x
equlib.conc. 0.20M-x x x
 NH 4 +  OH − 
The equilibrium equation for the reaction is given by: Kb =
NH 3

Substituting the concentration of NH 3 , NH 4 + and OH − in terms of x, gives:

( x)( x)
Kb =
(0.20 − x)

−5x2
1.8 x 10 =
0.20 − x
Since NH 3 is a weak base, and weak bases ionize only to a slight extent, x
must be small compared to 0.20. Therefore, you can make the approximation:
0.20 − x ≈ 0.20

x = 3.6 x 10−6 = 1.897 x 10−3
Now, the equation becomes (1.8 x 10−5 )(0.20) = x 2

27
 CHEMISTRY GRADE 12

Exercise 1.8
1. For a 0.040 M ammonia solution:
a. Write a chemical equation that shows the ionization of ammonia in water.
b. Calculate the equilibrium concentration of ammonia, ammonium ions
and hydroxide ions, using the approximation method. Check whether the
approximation is valid or not.
c. If the approximation is invalid, use the quadratic formula to calculate the
concentration of ammonia, ammonium ions and hydroxide ions.
d. Calculate the pOH and pH of the solution.

1.3 COMMON ION EFFECT AND BUFFER SOLUTION
At the end of this subunit, you will be able to:
 define the common-ion effect;
 explain the importance of the common-ion effect;
 define buffer solution;
 give some common examples of buffer systems;
 explain the action of buffer solutions and its importance in chemical
processes;
 calculate the pH of a given buffer solution; and

 demonstrate the buffer action of CH 3COOH / CH 3COONa

1.3.1 The Common ion Effect

Activity 1.7

In Grade 11 Chemistry, you learned Le Chatelier’s principle. Make a group and
discuss the following and present your report to the class. Industrially, ammonia
is produced by the Haber process.
1. Write a chemical equation for the production of ammonia in the process.
2. Assume that the reaction is at equilibrium. What is the effect of
a. adding more ammonia to the equilibrium system?
b. removing ammonia from the equilibrium system?
c. adding more hydrogen gas to the equilibrium system?
d. decreasing the concentration of both hydrogen and nitrogen gases from
the equilibrium system?

28
 Acid-Base Equilibria

e. increasing temperature?
f. decreasing pressure?
g. adding finely divided iron as a catalyst?
The common-ion effect is the shift in an ionic equilibrium caused by the addition of a
solute that provides an ion that takes part in the equilibrium. The common-ion effect occurs
when a given ion is added to an equilibrium mixture that already contains that ion. It is the
shift in an ionic equilibrium caused by the addition of a solute that provides an ion that
takes part in the equilibrium.

Consider a solution of acetic acid, CH 3COOH , in which you have the following acid-
ionization equilibrium:

CH 3COOH (aq ) + H 2O(l )  CH 3COO − (aq ) + H 3O + (aq )

Suppose you add HCl (aq) to this solution. What is the effect on the acid-ionization
equilibrium?

Because HCl (aq) is a strong acid, it provides H 3O + ion, which is present on the right
side of the equation for acetic acid ionization. According to LeChâtelier’s principle, the
equilibrium composition should shift to the left

CH 3COOH (aq ) + H 2O(l ) ← CH 3COO − (aq ) + H 3O + (aq )
added
The degree of ionization of acetic acid is decreased by the addition of a strong acid. This
repression of the ionization of acetic acid by HCl (aq) is an example of the common-ion
effect. Another example is, if sodium acetate and acetic acid are dissolved in the same

solution, they both dissociate and ionize to produce CH 3COO − ions, we can represent the
effect of acetate salts on the acetic acid equilibrium as:

29
 CHEMISTRY GRADE 12

Example 1.8
Determine the  H 3O +  and CH 3COO −  in a solution that is 0.10 M in both
CH 3COOH and HCl.
Solution:
0.10 M HCl ionizes completely to form 0.10 M H 3O + and 0.10 M Cl − ions.
The Cl − ion is a spectator ion, and it has no influence on the concentrations of
CH 3COO − and H 3O +
CH 3COOH (aq ) + H 2O(l )  CH 3COO − (aq ) + H 3O + (aq )
initial conc. 0.10 M ----- 0.10 M
changes −x +x +x
equlib.conc. 0.10 M − x x 0.10 M + x
 H 3O +  CH 3COO −  (0.1 + x)( x)
=Ka =
[CH 3COOH ] (0.1 − x)
(0.10 + x)( x)
1.8 x 10−5 =
(0.10 − x)
If x is very small, you can approximate (1.00 –x) and (1.00 +x) to 1.00

(0.10)( x)
1.8 x 10−5 =
(0.10)
=x =
CH 3COO −  1.8 x 10−5 M

 H 3O +  =+
0.10 1.8 x 10−5 =
1.9 x 10−5 M

30
 Acid-Base Equilibria

Exercise 1.9
a. Calculate the pH of a solution containing 0.20 M CH 3COOH and 0.30 M
CH 3COONa

b. What would be the pH of a 0.20 M CH 3COOH solution if no salt were
present?

1.3.2 Buffer Solutions

How does a buffer solution resist a pH change?

A buffer is commonly defined as a solution that resists changes in pH when a small amount
of acid or base is added or when the solution is diluted with pure solvent. This property
is extremely useful in maintaining the pH of a chemical system at an optimum value to
appropriately influence the reaction kinetics or equilibrium processes. A buffer solution
actually is a mixture of a weak acid and its conjugate base or a mixture of a weak base and
its conjugate acid. The conjugate forms are commonly referred to as “salts”.

Table1.4: Comparison of buffered and un buffered solutions.

Initial pH of pH after addition pH after addition
1.0 L sample of 0.010 mol NaOH of 0.010 mol HCl
Un buffered solution:1.28 × 4.8 12.0 2.0
10–5 M HCl

Buffered solution:0.099M 4.8 4.8 4.7

CH 3COOH

0.097M CH 3COONa

A buffer solution must contain a relatively large concentration of acid to react with any
OH − ions that may be added to it. Similarly, it must contain a large concentration of base to
react with any added H + ions. Furthermore, the acid and the base components of the buffer
must not consume each other in a neutralization reaction. These requirements are satisfied
by an acid-base conjugate pair (a weak acid and its conjugate base or a weak base and its
conjugate acid).

A simple buffer solution can be prepared by adding comparable amounts of acetic acid (
CH 3COOH ) and sodium acetate ( CH 3COONa ) to water. The equilibrium concentrations

31
 CHEMISTRY GRADE 12

of both the acid and the conjugate base (from CH 3COONa ) are assumed to be the same as
the starting concentrations. This is so because

−
1. CH 3COOH is a weak acid and the extent of hydrolysis of the CH 3COO ion is very
small and

2. the presence of CH 3COO − ions suppress the ionization of CH 3COOH , and the

presence of CH 3COOH suppresses the hydrolysis of the CH 3COO − ions

A solution containing these two substances has the ability to neutralize either added acid or
added base. Sodium acetate, a strong electrolyte, dissociates completely in water:

H O
2 → CH COO − ( aq ) + Na + ( aq )
CH 3COONa ( s )  3

If an acid is added, the H + ions will be consumed by the conjugate base in the buffer,

CH 3COO − ,according to the equation

CH 3COO − (aq ) + H + (aq ) → CH 3COOH (aq )

If a base is added to the buffer system, the OH − ions will be neutralized by the acid in the
buffer:

CH 3COOH (aq ) +OH − (aq ) → CH 3COO − (aq ) + H 2O(l )

Thus, a buffer solution resists changes in pH through its ability to combine with the H + and
OH − ions.

Buffers are very important to chemical and biological systems. The pH in the human
body varies greatly from one fluid to another; for example, the pH of blood is about 7.4,
whereas the gastric juice in our stomachs has a pH of about 1.5. These pH values, which
are crucial for the proper functioning of enzymes and the balance of osmotic pressure, are
maintained by buffers in most cases. The pH of a buffer solution can be estimated with
the help of Henderson–Hasselbalch equation when the concentration of the acid and its
conjugate base, or the base and the corresponding conjugate acid, are known.

The Henderson-Hasselbach equation is derived from the definition of the acid dissociation
constant as follows.

32
 Acid-Base Equilibria

Consider the hypothetical compound HA in water. The dissociation equation and K a ex-
pression are

HA + H 2O  H 3O + + A−

 H 3O +   A− 
Ka =
[ HA]
The key variable that determines [ H 3O + ] is the concentration ratio of acid species to base

species, so, rearranging to isolate [ H 3O + ] gives

 H 3O +  = K a x
[ HA]
 A− 

Taking the negative logarithm of both sides gives

 [ HA] 
− log K a − log  − 
− log  H 3O +  =
 A  
 

 [ HA] 
pH pK a − log  − 
from which definitions gives =
 A  
Rearranging the equation gives  

  A−  
pH pK a + log    
=
 [ HA] 
 
Generalizing the previous equation for any conjugate acid-base pair gives the Henderson-
Hasselbalch equation:

 [Conjugate base] 
=
pH pK a + log 
 [ weak acid ] 
 
Similarly, for a weak base dissociation:

 [Conjugate acid ] 
= pK b + log 
 [ weak base] 
pOH
 

33
 CHEMISTRY GRADE 12

Example 1.9
1. What is the pH of a buffer solution consisting of 0.035 M NH 3 and 0.050
M NH 4 + (Ka for NH4+ is 5.6 x 10-10)? The equation for the reaction is:
NH 4 +  H + + NH 3
Assuming that the change in concentrations is negligible in order for the system
to reach equilibrium, the Henderson-Hasselbalch equation will be:

 [ NH ] 
pH pK a + log 
= 3

  NH 4 +  
 
 0.035 
= 9.23 + log 
pH 
 0.050 
pH = 9.095
2. A buffer is made by mixing 0.060 M NH 3 with 0.040 M NH4Cl. What is the
pH of this buffer? K b = 1.8 x 10−5
Solution
The buffer contains a base and its conjugate acid in equilibrium. The equation is
NH 3 (aq ) + H 2O(l )  NH 4 + (aq ) + OH − (aq )
Assuming that the change in concentrations is negligible in order for the system
to reach equilibrium,
the Henderson-Hasselbalch equation will be:

 [Conjugate acid ] 
= pK b + log 
 [ weak base] 
pOH
 
 NH 4 + 
= pK b + log 
pOH 
 NH 3 
 0.04 
= 4.745 + log 
pOH 
 0.06 
= 4.745 − 0.1761
pOH

= 4.5689

pH= 14 − pOH
= 14 − 4.5689
= 9.4311

34
 Acid-Base Equilibria

Exercise 1.10
1. Calculate the pH :
a. of a buffer solution containing 0.1 M CH 3COOH and a 0.1 M solution
of CH 3COONa.
b. when 1.0 mL of 0.10 M HCl is added to 100 mL of the buffer in (a);
c. when 1.0 mL of 0.10 M NaOH is added to 100 mL of the buffer in (a);
d. of an unbuffered solution containing 1.8 × 10 –5 HCl ;
e. change of an unbuffered solution in (d) after adding
2. i. 1.0 mL of 0.1 M NaOH to 100 mL of the solution,
ii.1.0 mL of 0.10 M HCl to 100 mL of the solution.

1.4 Hydrolsis of Salts
At the end of this subunit, you will be able to:
 define hydrolysis;
 explain why a salt of weak acid and strong base gives a basic solution;
 explain why a salt of strong acid and weak base gives an acidic solution;
and
 explain why salts of weak acids and weak bases give acidic, basic or
neutral solutions.

What does salt hydrolysis mean?

Hydrolysis is a common form of a chemical reaction where water is mostly used to break
down the chemical bonds that exist between particular substances. Hydrolysis is derived
from a Greek word hydro meaning water and lysis meaning break or to unbind. Usually
in hydrolysis the water molecules get attached to two parts of a molecule. One molecule
of a substance will get H + ion and the other molecule receives the OH − group. The term
salt hydrolysis describes the “interaction of anion and cation of a salt, or both, with water.
Depending on the strengths of the parent acids and bases, the cation of a salt can serves as
an acid, base or neutral.

1.4.1 Hydrolysis of Salts of Strong Acids and Strong Bases

The reaction between a strong acid (say, HCl ) and a strong base (say, NaOH ) can be

represented by NaOH (aq ) + HCl (l ) → NaCl (aq ) + H 2O(l )

or in terms of the net ionic equation

35
 CHEMISTRY GRADE 12

H + (aq ) + OH − (aq ) → H 2O(l )

The anions derived from strong acids are weak conjugate bases and do not undergo
hydrolysis. The cations derived from strong bases are weak conjugate acids and also do
not hydrolysis. The strong bases are the ionic hydroxides of Group IA and IIA metals.
The cations of these metals also do not hydrolyze. It involves only ionization of water and
no hydrolysis..For the above reaction, chloride ions, Cl− , and sodium ions, Na + , do not
hydrolyze, the solution of the salt will be neutral ( pH =7).
Can you give more examples?

1.4.2 Hydrolysis of Salts of weak acids and strong bases

Consider the neutralization reaction between acetic acid (a weak acid) and sodium
hydroxide (a strong base):

CH 3COOH (aq ) + NaOH (aq ) → CH 3COONa(aq)+H 2O(aq )
This equation can be simplified to

CH 3COOH (aq ) + OH − (aq ) → CH 3COO − (aq)+H 2O(aq )
The acetate ion undergoes hydrolysis as follows:

CH 3COO − (aq)+H 2O(aq ) → CH 3COOH (aq ) + OH − (aq )
Therefore, at the equivalence point, when we only have sodium acetate present, the pH
will be greater than7 as a result of the excess OH − ions formed. Note that this situation is

analogous to the hydrolysis of sodium acetate ( CH 3COONa )Therefore, solutions of these
salts are basic because the anion of the weak acid is a moderately strong base and can be
hydrolyzed.

Activity 1.8
Consider NaNO2 and discuss the following:
a. What are the ‘parents’ (acid and base) of this salt?
b. Which ions of the salt can be hydrolyzed?
c. What will be the nature of NaNO2 solution? Will it be acidic, basic or
neutral?

36
 Acid-Base Equilibria

1.4.3 Hydrolysis of Salts of strong acids and weak bases

When we neutralize a weak base with a strong acid, the product is a salt containing the
conjugate acid of the weak base. This conjugate acid is a strong acid. For example, ammo-

nium chloride, NH 4 Cl , is a salt formed by the reaction of the weak base ammonia with the
strong acid HCl :

NH 3 (aq)+HCl (aq ) → NH 4Cl (aq )

A solution of this salt contains ammonium ions and chloride ions. Chloride is a very
weak base and will not accept a proton to a measurable extent. However, the ammonium
ion, the conjugate acid of ammonia, reacts with water and increases the hydronium ion
concentration:

NH 4 + (aq ) +H 2 O(l) → H 3O + (aq ) + NH 3 (aq)

1.4.4 Hydrolysis of Salts of weak acids and week bases

Solutions of a salt formed by the reaction of a weak acid and a weak base involve both
cationic and anionic hydrolysis. To predict whether the solution is acidic or basic you need

to compare the K a of the weak acid and the K b of the weak base. If the K a is larger than the

K b , the solution is acidic, and if the K a is less than the K b , the solution is basic. If they are
equal the solution is neutral. Consider solutions of ammonium formate, NH 4CHO2. These

solutions are slightly acidic, because the K b for NH 4 + ( 5.6x 10-10) is somewhat larger than

the K b for formate ion, CHO2 − ( 5.9 x 10-11).

37
 CHEMISTRY GRADE 12

Activity 1.9

In the following table you are given K a and K b values of some cations and
anions, respectively.

Anion Kb Cation Ka

F− 1.4 × 10–11 NH 4 + 5.6 × 10–10

CNS − 2.0 × 10–5 5.6 × 10–10

CH 3COO −

Using the above table, determine whether the solutions of NH 4 F , NH 4 CNS
and CH 3COONH 4 are acidic, basic or neutral. Discuss your results with your
classmates.

1.5 Acid–Base Indicators and Titrations
At the end of this subunit, you will be able to:
 define acid-base indicators;
 write some examples of acid-base indicators;
 suggest a suitable indicator for a given acid-base titration;
 explain the equivalents of acids and bases;
 calculate the normality of a given acidic or basic solution;
 define acid-base titration;
 distinguish between end point and equivalent point; and
 discuss the different types of titration curves

1.5.1 Acid–Base Indicators

How do acid-base indicators change color?

Acid-base indicators are weak organic acids (denoted here as HIn ) or weak organic bases
( In − ) that indicate whether a solution is acidic, basic or neutral. The color of the indicator
depends on the pH of the solution to which it is added. When just a small amount of
indicator is added to a solution, the indicator does not affect the pH of the solution.

Instead, the ionization equilibrium of the indicator is affected by the prevailing  H 3O +  in
the solution

38
 Acid-Base Equilibria

HIn + H 2O  H 3O + + In −
Acid colour Ba se c olour

If the indicator is in a sufficiently acidic medium [increasing  H 3O +  ], the equilibrium,
according to Le Châtelier’s principle, shifts to the left and the predominant color of the
indicator is that of the non-ionized form ( HIn ). On the other hand, in a basic medium

[Decreasing  H 3O +  ] the equilibrium shifts to the right and the color of the solution will be
due mainly to that of the conjugate base ( In − ).

An acid–base indicator is usually prepared as a solution (in water, ethanol, or some other
solvent). In acid–base titrations, a few drops of the indicator solution are added to the
solution being titrated. In other applications, porous paper is impregnated with an indicator
solution and dried. When this paper is moistened with the solution being tested, it acquires
a color determined by the pH of the solution. This paper is usually called pH test paper.

Table 1.5: Some common indicators.

Indicator change Acid Color Base Color pH range of Color
Methyl violet Yellow Violet 0.0 – 1.6
Methyl orange Red Yellow 3.2 – 4.4
Bromcresol green Yellow Blue 3.8 – 5.4
Methyl red Red Yellow 4.8 – 6.0
Litmus Red Blue 5.0 – 8.0
Phenolphthalein Colorless Pink 8.2 – 10.0

Example 1.10
What is the pH of a buffer prepared with 0.40 M CH 3COOH and 0.20 M
CH 3COO − if the K a of CH 3COOH is 1.8 x 10 -5 ? Which type of indicator is used
to check the acidity or basicity of this solution?

=  H 3O +  K=
[CH 3COOH ] 1.8 x 10−5 M x 0.40
a x
CH 3COO −  0.20
Solution:
 H 3O +  = 3.6 x 10−5 M
− log(3.6 x 10−5 ) =
pH = 4.44

The pH value indicates that the solution is acidic

39
 CHEMISTRY GRADE 12

1.5.2 Equivalents of Acids and Bases

The reactive capacity of a chemical species, the ions or electrons, depends on what is being
transferred in a chemical reaction. In acid-base reactions, an equivalent is the amount of
a substance that will react with one mole of hydrogen ions. For acids, an equivalent is
the number of hydrogen ions a molecule transfer. For example, for Sulfuric acid ( H 2 SO4 )
equivalents is equal to 2.

For bases, it is the number of hydroxide ions ( OH − )ions provided for a reaction, for
example for Barium hydroxide ( Ba (OH ) 2 )equivalents is equal to 2.

The normality of a solution refers to the number of equivalents of solute per Liter of solu-
tion.

Number of equivalents of solutes
Normality =
Liters of solution

The definition of chemical equivalent depends on the substance or type of chemical re-
action under consideration. Because the concept of equivalents is based on the reacting
power of an element or compound, it follows that a specific number of equivalents of one
substance will react with the same number of equivalents of another substance. When the
concept of equivalents is taken into consideration, it is less likely that chemicals will be
wasted as excess amounts. Keeping in mind that normality is a measure of the reacting
power of a solution, we use the following equation to determine normality:

Thus, according to the definition of normality, the number of equivalents is the normality
multiplied by the volume of solution, in litters. If we add enough acid to neutralize a given
volume of base, the following equation holds:

N1V1 = N 2V2

Where N1and V1refer to the normality and volume of the acid solution, respectively, and N2
and V2 refer to the normality and volume of the base solution, respectively.

40
 Acid-Base Equilibria

Example 1.11
What volume of 2.0 N NaOH is required to neutralize 25.0 mL of 2.70 N H 2 SO4
?
Solution:

N1V1 = N 2V2

N1V1
V2 =
N2

(2.7 N H 2 SO4 )(25.0 mL H 2 SO4 )
V2 NaOH =
2.0 N NaOH
= 33.8 mL

1.5.3 Acid–Base Titrations

An acid–base titration is a procedure for determining the amount of acid (or base) in a
solution by determining the volume of base (or acid) of known concentration that will
completely react with it. In a titration, one of the solutions to be neutralized say, the acid
is placed in a flask or beaker, together with a few drops of an acid base indicator (Figure
1.2). The other solution (the base) used in a titration is added from a burette and is called
the titrant. The titrant is added to the acid (Titrand or analyte), first rapidly and then drop by
drop, up to the equivalence point. The equivalence point of the titration is the point at which
the amount of titrant added is just enough to completely neutralize the analyte solution. At
the equivalence point in an acid-base titration, moles of base are equal to moles of acid and
the solution contains only salt and water. The equivalence point is located by noting the
color change of the acid base indicator. The point in a titration at which the indicator changes
color is called the end point of the indicator. The end point must match the equivalence
point of the neutralization. That is, if the indicators end point is near the equivalence point
of the neutralization, the color change marked by that end point will signal the attainment
of the equivalence point. This match can be achieved by use of an indicator whose color
change occurs over a pH range that includes the pH of the equivalence point. Knowing
the volume of titrant added allows the determination of the concentration of the unknown
analyte using the following relation

volume of base x concentration of base = volume of acid x unknown concentration of acid

volume of base x concentration of base
unknown concentration of acid =
volume of acid

41
 CHEMISTRY GRADE 12

Figure 1.2: The Techniques of Titration.

An acid–base titration curve is a plot of the pH of a solution of acid (or base) against
the volume of added base (or acid). Such curves are used to gain insight into the titration
process.

Experiment 1.1
Acid-base Titration

Objective: To find the normality of a given hydrochloric acid solution by titrating
against 0.1 N standard sodium hydroxide solution.

Apparatus: 10 mL pipette, burette, 150 mL Erlenmeyer flask, beaker, funnel, bu-
rette clamp and metal stand.

Procedure:

1. Clean the burette with distilled water and rinse it with the 0.1 N sodium hydrox-
ide solution; and fix the burette on the burette clamp in vertical position (Figure
1.3).
2. Using a funnel, introduce 0.1 N sodium hydroxide solutions into the burette. Al-
low some of the solution to flow out and make sure that there are no air bubbles
in the solution (why?).
3. Record level of the solution, corresponding to the bottom of the meniscus, to the
nearest 0.1 mL.

42
 Acid-Base Equilibria

4. Measure exactly 10 mL of hydrochloric acid solution (given) with the help of
a10 mL pipette and add it into a clean 150 mL Erlenmeyer flask and add two or
three drops of phenolphthalein indicator.
5. Caution: When you suck hydrochloric acid or any reagent solution, into a pi-
pette, have the maximum caution not to suck it into your mouth.
6. Titration: First hold the neck of the Erlenmeyer flask with one hand and the
stopcock with the other. As you add the sodium hydroxide solution from the
burette, swirl the content of the flask gently and continuously.
7. Add sodium hydroxide solution until the first faint pink color comes which dis-
appears on swirling.
8. Add more sodium hydroxide drop wise until the pink color persists for a few
seconds.
9. Find the difference between the initial level and the end point level of the bu-
rette.
Observations and analysis:

1. Color change at the end point is from __________ to _________.
2. What is the volume of sodium hydroxide added at the end point?
3. What is the normality of hydrochloric acid at the end point?
4. What is the similarity and difference between equivalence point and end point
level after reaching the end point?

Figure 1.3: Titration Setup.

43
 CHEMISTRY GRADE 12

Unit Summary
~ By the Arrhenius definition, an Arrhenius acid produces H + and an Arrhenius
base produces OH − in aqueous solutions. And an acid-base reaction (neutral-
ization)is the reaction of H + and OH − to form H 2O.The Arrhenius definition
of acids and bases has many limitations but still we cannot ignore it.
~ The Brønsted-Lowry acid-base definition does not require that bases contain
OH − in their formula or that acid-base reactions occur in aqueous solution.
An acid is a species that donates a proton and a base is one that accepts it, so
an acid-base reaction is a proton-transfer process. When an acid donates a pro-
ton, it becomes the conjugate base; when a base accepts a proton, it becomes
the conjugate acid. In an acid-base reaction, acids and bases form their conju-
gates. A stronger acid has a weaker conjugate base, and vice versa.
~ Brønsted-Lowry bases include NH 3 and amines and the anions of weak acids.
All produce basic solutions by accepting H + from water, which yields OH − ,
thus making  H 3O +  < OH − 
~ The Lewis acid-base definition focuses on the donation or acceptance of an
electron pair to form a new covalent bond in an addict, the product of an
acid-base reaction. Lewis bases donate the electron pair, and Lewis’s acids ac-
cept it. Thus, many species that do not contain H + act as Lewis’s acids; exam-
ples are molecules with electron-deficient atoms and those with polar double
bonds. Metal ions act as Lewis’s acids when they dissolve in water, which acts
as a Lewis base, to form the adduct, a hydrated cation
~ Pure water auto ionizes to a small extent in a process whose equilibrium con-
stant is the ion product constant for water, K w (1.0 x 10-14 at 25 0C).  H 3O + 
and OH −  are inversely related: in acidic solution,  H 3O +  is greater than
OH −  ; the reverse is true in basic solution; and the two are equal in neu-
tral solution. To express small values of  H 3O +  , we use the pH scale (
pH = − log  H 3O +  ). Similarly, pOH = − log OH −  and. pK = − log K
~ A high pH represents a low  H 3O + . In acidic solutions, pH < 7; in basic
solutions, pH > 7; and in neutral solutions pH = 7. The sum of pH and pOH
equals pK w (14.00 at 25 0C).
~ Acid strength depends on  H 3O +  relative to [ HA] in aqueous solution.
Strong acids dissociate completely and weak acids slightly.
~ The extent of dissociation is expressed by the acid-dissociation constant, K a.
Most weak acids have K a values ranging from about 10-2 to 10-10.
~ The pH of a buffered solution changes much less than the pH of an unbuff-
ered solution when  H 3O +  or OH − is added.

44
 Acid-Base Equilibria

~ An acid-base reaction proceeds to the greater extentin the direction in which a
stronger acid and base form a weaker base and acid.
~ Two common types of weak-acid equilibrium problems involve finding K a
from a given concentration and finding a concentration from a given K a.
~ The extent to which a weak base accepts a proton from water to form OH − is
expressed by a base-dissociation constant, K b.
~ By multiplying the expressions for K a of HA and K b of A− , we obtain K w.
This relationship allows us to calculate either K a of BH + or K b of A−.
~ A buffer consists of a weak acid and its conjugate base (or a weak base and its
conjugate acid).To be effective, the amounts of the components must be much
greater than the amount of  H 3O +  or OH − added.
~ The buffer-component concentration ratio determines the pH ;the ratio and the
pH are related by the Henderson-Hasselbalch equation.
~ When  H 3O +  or OH − is added to abuffer, one component reacts to form the
other; thus  H 3O +  (and pH ) changes only slightly.
~ A concentrated (higher capacity) buffer undergoes smaller changes in pH than
a dilute buffer. When the buffer pH equals the pK a of the acid component, the
buffer has its highest capacity.

Check List
Key terms of the unit

 Arrhenius acid-base concept
 Bronsted-Lowry concept of acid and bases
 Conjugate acid and Conjugate base
 Lewis’s concept of acids and bases
 Autoionization
 Amphiprotic species
 pH scale
 percent ionization
 Hydrolysis of salts
 Buffer solution
 Common ion effect
 Equivalents of acids and bases
 Acid-base titration

45
 CHEMISTRY GRADE 12

REVIEW EXERCISE FOR UNIT 1
Part I Multiple Choice

1. Which of the following is a Brønsted-Lowry base but an Arrhenius base?

a. NH3 b. NaOH c. Ca (OH)2 d. KOH

2. Use the following acid ionization constants to identify the correct decreasing order of
base strengths.

HF Ka = 7.2 x 10–4HNO2 Ka = 4.5 x 10–4 HCN Ka = 6.2 x 10–10

a. CN–>NO2–> F– b. F–>NO2–>CN– c. NO2–> F–> CN– d. NO2–> CN–>F–

3. In the Brønsted–Lowry definition of acids and bases, an acid __________

a. is a proton donor. b. breaks stable hydrogen bonds.

c. is a proton acceptor. d. corrodes metals.

4. Which of the following is the conjugate acid of the hydrogen phosphate ion, HPO42–?

a. H3PO4 b. PO43– c. H2PO4– d. H3O+

5. Which one of the following is not a conjugate acid–base pair?

a. NH3 and NH4+ b. HS– and H2S c. NH3 and NH2– d. H3O+ and OH–

6. Which one of the following is not a conjugate acid–base pair?

a. NH3 and NH2– b. H2PO4– and HPO42– c. HNO3 and HNO2 d. H2O and OH–

7. Which one of the following is not a strong acid?

a. nitric acid, HNO3 b. carbonic acid, H2CO3

c. sulfuric acid, H2SO4 d. perchloric acid, HClO4

8. Each of the following pairs contains one strong acid and one weak acid EXCEPT:

a. H2SO4 and H2CO3 b. HNO3 and HNO2

c. HBr and H3PO2 d. HSO4─ and HCN

9. When [H+] = 4.0 × 10–9 M in water at 25°C, then __________

a. pH = 9.40. b. pH = 8.40. c. pH = 7.00. d. pH = –9.40

10. A solution with an [OH–] concentration of 1.20 × 10–7 M has a pOH and pH of
__________

a. 6.92 and 7.08 b. 7.08 and 6.92 c. 1.00 and 13.00 d. 5.94 and 8.06

46
 Acid-Base Equilibria

11. The acidic ingredient in vinegar is acetic acid. The pH of vinegar is around 2.4, and
the molar concentration of acetic acid in vinegar is around 0.85 M. Based on this
information, determine the value of the acid ionization constant, Ka, for acetic acid.

a. 2.5 × 10–5 b. 1.9 × 10–5 c. 5.0 × 10–5 d. 7.4 × 10–3

12. A cup of coffee has a hydroxide ion concentration of 1.0 × 10–10 M. What is the pH of
this coffee?

a. 6 b. 7 c. 4 d. 2

13. What is the concentration of [OH–] in a 0.20 M solution of ammonia? The Kb value for
ammonia is 1.8 × 10–5.

a. 3.6 × 10–6 M b. 1.8 × 10–5 M c. 1.9 × 10–3 M d. 4.2 × 10–4 M

14. Whcih of the following molecules is not a lewis base?

a. HCl b NH3 c. BH3 d. NaOH

15. Which one of the following salts forms aqueous solutions with pH = 7?

a. Na2S b. NaNO2 c. NaBr d. Na2CO3

Part II: Short Answer Questions
1. Define acids and bases based on the concept of
a. Arrhenius b. Brønsted-Lowry c. Lewis

2. In each of the following equations, identify the reactant that is a Brønsted–Lowry
acid and the reactant that is a Brønsted–Lowry base:

HBr (aq ) + H 2O(l ) → H 3O + (aq ) + Br − (aq )
a.
− −
b. CN (aq) + H 2O(l )  HCN(aq) + OH (aq)

3. Identify the Bronsted -Lowery acid - base pairs in each of the following equations.
− +
a. H 3 PO (aq) + H 2O(l )  H 2 PO4 (aq ) + H 3O (aq )

b. CO32− (aq ) + H 2O(l )  HCO3− (aq ) + OH − (aq )

c. H 3 PO (aq) + NH 3 (aq)  H 2 PO4 − (aq) + NH 4 + (aq)
4

4. According to the Lewis theory, each of the following is an acid base reaction. Which
species is the acid and which is the base?

a. BF3 + F − → BF4 − b. OH − (aq ) + CO2 (aq ) → HCO3− (aq )

47
 CHEMISTRY GRADE 12

5. Classify each of the following compounds as a strong acid, weak acid, strong base, or
weak base:

a. KOH b. (CH3)2CHCOOH c.H2SeO4 d. (CH3)2CHNH2

6. Which of the following are amphiprotic?
a. OH─ b. NH3 c. H2O d. H2S e. NO3– f. HCO3– g.CH3COO– h. HNO3

7. A research chemist adds a measured amount of HCl gas to pure water at 25 0C and
obtains a solution with [H3O+] = 5 3.0 x 10-4M. Calculate [OH─]. Is the solution
neutral, acidic, or basic?

8. Calculate the percent ionization of a 0.125 M solution of nitrous acid (a weak acid),
with a pH of 2.09

9. A vinegar solution has a [OH-] = 5.0 x 10-12 M at 25 °C. What is the [H3O+] of the
vinegar solution? Is the solution acidic, basic, or neutral?

10. The Ka for acetic acid, HC2H3O2, is 1.8 x 10-5. What is the pH of a buffer prepared
with 1.0 M HC2H3O2 and 1.0 M C2H3O2- ?

HC2 H 3 O2 (aq) + H 2O(aq )  H 3O + (aq) + C2 H 3O 2 − (aq)

48
 Electro chemistry

UNIT
ELECTRO CHEMISTRY
2
Unit Outcomes

After completing this unit, students will be able to:
 describe the fundamental concepts related to oxidation- reduction
reaction;
 explain the application of redox reactions in production of new
substances and energy;
 demonstr