Class 11 Chemistry Hydrocarbons Notes

Class 11 Chemistry Notes

Chapter 9: Hydrocarbons

Part 1 — Introduction, Classification and Alkanes

1. Introduction to Hydrocarbons

Definition

Hydrocarbons are organic compounds that contain only two elements:

  • Carbon (C)
  • Hydrogen (H)

Examples:

  • Methane → CH₄
  • Ethane → C₂H₆
  • Ethene → C₂H₄
  • Benzene → C₆H₆

Hydrocarbons are important because they are:

  • Major sources of energy
  • Raw materials for industries
  • Used in the production of polymers, dyes, drugs and solvents

Common hydrocarbon-based fuels:

  • LPG (Liquefied Petroleum Gas)
  • CNG (Compressed Natural Gas)
  • Petrol
  • Diesel
  • Kerosene

Hydrocarbons are present mainly in:

  • Petroleum
  • Natural gas
  • Coal

2. Classification of Hydrocarbons

Hydrocarbons are classified based on the type of carbon-carbon bonds present.

A. Saturated Hydrocarbons

Meaning:

Hydrocarbons containing only single bonds (C–C) are called saturated hydrocarbons.

They are also called alkanes.

General formula:CnH2n+2C_nH_{2n+2}Cn​H2n+2​

Examples:

CompoundFormula
MethaneCH₄
EthaneC₂H₆
PropaneC₃H₈
ButaneC₄H₁₀

B. Unsaturated Hydrocarbons

Hydrocarbons containing multiple bonds are called unsaturated hydrocarbons.

They are of two types:

1. Alkenes

Contain at least one double bond (C=C).

General formula:CnH2nC_nH_{2n}Cn​H2n​

Example:

Ethene:

CH₂ = CH₂


2. Alkynes

Contain at least one triple bond (C≡C).

General formula:CnH2n2C_nH_{2n-2}Cn​H2n−2​

Example:

Ethyne:

CH≡CH


C. Aromatic Hydrocarbons

These are special cyclic hydrocarbons containing aromatic rings.

Example:

Benzene:

C₆H₆


3. Alkanes

Definition

Alkanes are saturated open-chain hydrocarbons containing only carbon-carbon single bonds.

The first member of the alkane family is:

Methane (CH₄)

Other members are formed by replacing a hydrogen atom with a –CH₃ group.

Examples:

Methane → CH₄
Ethane → C₂H₆
Propane → C₃H₈
Butane → C₄H₁₀

General formula:CnH2n+2\boxed{C_nH_{2n+2}}Cn​H2n+2​​


4. Structure of Alkanes

Carbon in alkanes is sp³ hybridised.

Important features:

  • Carbon has tetrahedral geometry.
  • Bond angle = 109.5°
  • C–C bond length ≈ 154 pm
  • C–H bond length ≈ 112 pm

Methane structure:

       H
       |
   H — C — H
       |
       H

The four hydrogen atoms occupy the corners of a tetrahedron.


5. Homologous Series of Alkanes

A homologous series is a group of compounds having:

  • Same general formula
  • Similar chemical properties
  • Successive members differ by –CH₂– group

Example:

NameFormula
MethaneCH₄
EthaneC₂H₆
PropaneC₃H₈
ButaneC₄H₁₀

Difference between consecutive members:

C₂H₆ – CH₄ = CH₂


6. Nomenclature of Alkanes (IUPAC Rules)

Step 1: Select the longest carbon chain

The longest chain is the parent hydrocarbon.

Examples:

5 carbons → Pentane
6 carbons → Hexane


Step 2: Number the carbon chain

Number from the side nearest to the substituent.

Example:

Wrong numbering:

CH₃–CH₂–CH(CH₃)–CH₃

Correct:

CH₃–CH(CH₃)–CH₂–CH₃

Name:

2-Methylbutane


Step 3: Name the substituents

Common alkyl groups:

AlkaneAlkyl group
MethaneMethyl (–CH₃)
EthaneEthyl (–C₂H₅)
PropanePropyl (–C₃H₇)

General formula of alkyl group:CnH2n+1C_nH_{2n+1}Cn​H2n+1​


7. Isomerism in Alkanes

Definition

Compounds having the same molecular formula but different structures are called isomers.

This phenomenon is called isomerism.


Chain Isomerism

When compounds differ due to different arrangements of carbon chains.

Example:

Molecular formula:C4H10C_4H_{10}C4​H10​

Two structures:

1. n-Butane

CH₃–CH₂–CH₂–CH₃

2. Isobutane

(CH₃)₃CH

Both have the same formula but different structures.


8. Types of Carbon Atoms in Alkanes

Carbon atoms are classified according to the number of carbon atoms attached to them.

Primary Carbon (1°)

Attached to only one other carbon atom.

Example:

CH₃–


Secondary Carbon (2°)

Attached to two carbon atoms.

Example:

–CH₂–


Tertiary Carbon (3°)

Attached to three carbon atoms.

Example:

     CH3
      |
CH3— C —H
      |
    CH3

Quaternary Carbon (4°)

Attached to four carbon atoms.

Example:

      CH3
       |
CH3 — C — CH3
       |
      CH3

9. Preparation of Alkanes

Method 1: Hydrogenation of Unsaturated Hydrocarbons

Alkenes and alkynes react with hydrogen in presence of catalysts:

Catalysts:

  • Nickel (Ni)
  • Platinum (Pt)
  • Palladium (Pd)

Example:CH2=CH2+H2CH3CH3CH_2=CH_2 + H_2 \rightarrow CH_3-CH_3CH2​=CH2​+H2​→CH3​−CH3​

(Ethene → Ethane)

This process is called hydrogenation.


Method 2: From Alkyl Halides

(a) Reduction Method

Alkyl halides react with zinc and dilute HCl to form alkanes.

Example:CH3Cl+H2CH4+HClCH_3Cl + H_2 \rightarrow CH_4 + HClCH3​Cl+H2​→CH4​+HCl


(b) Wurtz Reaction

Two alkyl halide molecules react with sodium metal in dry ether.

General reaction:2RX+2NaRR+2NaX2R-X + 2Na \rightarrow R-R + 2NaX2R−X+2Na→R−R+2NaX

Used for preparing higher alkanes.


Method 3: Decarboxylation

Sodium salts of carboxylic acids react with soda lime to produce alkanes.

Important point:

Number of carbon atoms decreases by one.

Example:

Sodium acetate gives methane:CH3COONaCH4CH_3COONa \rightarrow CH_4CH3​COONa→CH4​


10. Physical Properties of Alkanes

1. Nature

  • Alkanes are non-polar.
  • They have weak van der Waals forces.

2. Physical State

At room temperature:

Carbon atomsState
C₁–C₄Gases
C₅–C₁₇Liquids
C₁₈ onwardsSolids

3. Solubility

  • Insoluble in water
  • Soluble in non-polar solvents

Rule:

Like dissolves like


11. Chemical Properties of Alkanes

1. Substitution Reaction

Hydrogen atoms of alkanes are replaced by other atoms/groups.

Example:

Chlorination of methane:CH4+Cl2hvCH3Cl+HClCH_4+Cl_2 \xrightarrow{hv} CH_3Cl+HClCH4​+Cl2​hv​CH3​Cl+HCl

Products formed stepwise:

Methane → Chloromethane → Dichloromethane → Chloroform → Carbon tetrachloride


2. Combustion

Alkanes burn in oxygen to produce:

  • Carbon dioxide
  • Water
  • Heat energy

Example:CH4+2O2CO2+2H2O+heatCH_4+2O_2 \rightarrow CO_2+2H_2O+\text{heat}CH4​+2O2​→CO2​+2H2​O+heat

Because of high heat production, alkanes are used as fuels.


Quick Revision Box

Alkanes:

  • Saturated hydrocarbons
  • Only C–C single bonds
  • Formula: CₙH₂ₙ₊₂
  • Carbon is sp³ hybridised
  • First member: Methane
  • Main reaction: Substitution
  • Used as fuels

Part 2 — Alkenes

1. Introduction to Alkenes

Definition

Alkenes are unsaturated hydrocarbons containing at least one carbon-carbon double bond (C=C).

They are also called olefins because ethene reacts with chlorine to form oily products.

General formula:CnH2n\boxed{C_nH_{2n}}Cn​H2n​​

Examples:

AlkeneFormula
EtheneC₂H₄
PropeneC₃H₆
ButeneC₄H₈

The first stable member of the alkene family is:

Ethene (C₂H₄)


2. Structure of Double Bond (C=C)

A carbon-carbon double bond consists of:

1. Sigma (σ) bond

  • Formed by head-on overlapping of sp² hybrid orbitals
  • Stronger bond

2. Pi (π) bond

  • Formed by sideways overlapping of p-orbitals
  • Weaker than sigma bond

Structure:

     H     H
      \   /
       C=C
      /   \
     H     H

Important points:

  • Carbon atoms in alkenes are sp² hybridised
  • Geometry is trigonal planar
  • Bond angle ≈ 120°
  • Rotation around C=C bond is restricted because of the π bond

3. Nomenclature of Alkenes (IUPAC Rules)

Rule 1: Select the longest carbon chain containing the double bond

Example:

CH₃–CH=CH₂

Number of carbons = 3

Name:

Propene


Rule 2: Number the chain from the side nearest to the double bond

Example:

CH₃–CH₂–CH=CH₂

Correct numbering:

CH₂=CH–CH₂–CH₃

Double bond gets lowest number.

Name:

But-1-ene


Rule 3: Replace suffix “-ane” with “-ene”

Examples:

AlkaneAlkene
EthaneEthene
PropanePropene
ButaneButene

Examples of Alkene Names

StructureIUPAC Name
CH₂=CH₂Ethene
CH₃–CH=CH₂Propene
CH₃–CH=CH–CH₃But-2-ene
CH₂=CH–CH=CH₂Buta-1,3-diene

4. Isomerism in Alkenes

Alkenes show two main types of isomerism:

  1. Structural isomerism
  2. Geometrical isomerism

A. Structural Isomerism

Same molecular formula but different arrangement of atoms.

Types:

1. Chain Isomerism

Different carbon skeleton.

Example:

Formula: C₄H₈

But-1-ene

CH₂=CH–CH₂–CH₃

2-Methylprop-1-ene

      CH3
       |
CH2 = C — CH3

They have the same molecular formula but different carbon chains.


2. Position Isomerism

Different position of double bond.

Example:

But-1-ene

CH₂=CH–CH₂–CH₃

But-2-ene

CH₃–CH=CH–CH₃

The position of C=C bond changes.


B. Geometrical Isomerism (Cis-Trans Isomerism)

Cause

Restricted rotation around the C=C bond produces different arrangements in space.

For geometrical isomerism:

Each carbon of double bond must have two different groups attached.

General condition:

       X       Y
        \     /
         C = C
        /     \
       Y       X

Types:

1. Cis Isomer

Similar groups are on the same side.

Example:

cis-but-2-ene

 CH3     CH3
   \     /
    C = C
   /     \
  H       H

2. Trans Isomer

Similar groups are on opposite sides.

Example:

trans-but-2-ene

 CH3      H
   \      /
    C == C
   /      \
  H       CH3

Difference between Cis and Trans Forms

CisTrans
Groups on same sideGroups on opposite sides
More polarUsually less polar
Higher dipole momentLower dipole moment

Example:

cis-but-2-ene has dipole moment ≈ 0.33 D
trans-but-2-ene has almost zero dipole moment


5. Preparation of Alkenes

Method 1: From Alkynes

Alkynes can be partially reduced to alkenes.

Using Lindlar Catalyst

Catalyst:

  • Palladium on charcoal
  • Deactivated with poisons like sulphur compounds

Produces cis-alkenes.

Example:CHCH+H2CH2=CH2CH \equiv CH + H_2 \rightarrow CH_2=CH_2CH≡CH+H2​→CH2​=CH2​


Using Sodium in Liquid Ammonia

Produces trans-alkenes.


Method 2: Dehydrohalogenation of Alkyl Halides

Alkyl halides react with alcoholic KOH on heating.

Reaction:RX+KOHAlkene+KX+H2OR-X + KOH \rightarrow Alkene + KX + H_2OR−X+KOH→Alkene+KX+H2​O

This reaction involves removal of:

  • Hydrogen atom
  • Halogen atom

Therefore called dehydrohalogenation.

Example:

Bromoethane → Ethene


Method 3: From Vicinal Dihalides

Vicinal dihalides contain two halogen atoms on adjacent carbon atoms.

They undergo removal of halogens to form alkenes.

General reaction:RCHXCHXRRCH=CHRRCHX-CHXR \rightarrow RCH=CHRRCHX−CHXR→RCH=CHR


6. Physical Properties of Alkenes

1. Physical State

  • Lower alkenes are gases.
  • Middle members are liquids.
  • Higher members are solids.

2. Solubility

  • Insoluble in water
  • Soluble in organic solvents

Reason:

Alkenes are mostly non-polar.


7. Chemical Properties of Alkenes

The π bond makes alkenes more reactive than alkanes.

Main reactions:

  1. Addition reactions
  2. Oxidation
  3. Polymerisation

A. Addition Reactions

Alkenes add atoms across the double bond.

General reaction:C=C+XYXCCYC=C + XY \rightarrow X-C-C-YC=C+XY→X−C−C−Y


1. Hydrogenation

Addition of hydrogen:CH2=CH2+H2CH3CH3CH_2=CH_2+H_2 \rightarrow CH_3-CH_3CH2​=CH2​+H2​→CH3​−CH3​

Catalyst:

Ni/Pt/Pd

Product:

Alkane


2. Halogen Addition

Alkenes react with halogens.

Example:CH2=CH2+Br2CH2BrCH2BrCH_2=CH_2+Br_2 \rightarrow CH_2Br-CH_2BrCH2​=CH2​+Br2​→CH2​Br−CH2​Br

Product:

Vicinal dihalide


3. Addition of Hydrogen Halides (HX)

Examples:

  • HCl
  • HBr
  • HI

Example:CH2=CH2+HBrCH3CH2BrCH_2=CH_2+HBr \rightarrow CH_3CH_2BrCH2​=CH2​+HBr→CH3​CH2​Br


Markovnikov’s Rule

When an unsymmetrical alkene reacts with an unsymmetrical reagent:

Hydrogen attaches to the carbon already having more hydrogen atoms.

Example:

Propene + HBr

Major product:

2-Bromopropane


8. Oxidation of Alkenes

Alkenes can be oxidised using oxidising agents.

Common oxidising agents:

  • KMnO₄
  • O₃

Ozonolysis

Ozone breaks the double bond and forms carbonyl compounds.

Used for:

  • Locating position of double bond

9. Polymerisation of Alkenes

Small alkene molecules combine to form large molecules called polymers.

Example:

Ethene:n(CH2=CH2)(CH2CH2)nn(CH_2=CH_2) \rightarrow (-CH_2-CH_2-)_nn(CH2​=CH2​)→(−CH2​−CH2​−)n​

Product:

Polythene (polyethylene)

Uses:

  • Plastic materials
  • Packaging
  • Containers

Quick Revision Box: Alkenes

PropertyAlkenes
TypeUnsaturated hydrocarbons
BondC=C
FormulaCₙH₂ₙ
Hybridisationsp²
Bond angle120°
Main reactionAddition
First stable memberEthene
ShowStructural + geometrical isomerism

Important Exam Points

⭐ Double bond contains one σ and one π bond.
⭐ π bond causes higher reactivity of alkenes.
⭐ Rotation around C=C bond is restricted.
⭐ Cis-trans isomerism occurs due to restricted rotation.
⭐ Alkenes mainly undergo electrophilic addition reactions.

Part 3 — Alkynes

1. Introduction to Alkynes

Definition

Alkynes are unsaturated hydrocarbons containing at least one carbon-carbon triple bond (C≡C).

General formula:CnH2n2\boxed{C_nH_{2n-2}}Cn​H2n−2​​

Examples:

AlkyneFormula
EthyneC₂H₂
PropyneC₃H₄
ButyneC₄H₆

The simplest and first member of the alkyne family is:

Ethyne (C₂H₂)

Common name:

Acetylene


2. Structure of Triple Bond

A carbon-carbon triple bond consists of:

1. One Sigma (σ) Bond

  • Formed by head-on overlapping of sp hybrid orbitals
  • Strong bond

2. Two Pi (π) Bonds

  • Formed by sideways overlap of two pairs of p-orbitals

Structure:

H — C ≡ C — H

(Ethyne)


Hybridisation in Alkynes

Carbon atoms involved in triple bonds are:

sp hybridised

Geometry:

  • Linear arrangement
  • Bond angle = 180°

Example:

H — C ≡ C — H
       |
     180°

3. Important Features of Triple Bond

FeatureValue
Hybridisationsp
GeometryLinear
Bond angle180°
Bonds present1 σ + 2 π
General formulaCₙH₂ₙ₋₂

4. Nomenclature of Alkynes (IUPAC Rules)

Rule 1:

Select the longest carbon chain containing the triple bond.


Rule 2:

Number the chain from the end nearest to the triple bond.


Rule 3:

Replace suffix “-ane” with “-yne”.

Examples:

StructureIUPAC Name
HC≡CHEthyne
CH₃–C≡CHPropyne
CH₃–CH₂–C≡CHBut-1-yne
CH₃–C≡C–CH₃But-2-yne

5. Isomerism in Alkynes

Alkynes mainly show:

1. Chain Isomerism

Different arrangement of carbon chains.

Example:

Formula:C5H8C_5H_8C5​H8​

Possible structures:

Pent-1-yne

CH≡C–CH₂–CH₂–CH₃

3-Methylbut-1-yne

      CH3
       |
HC≡C—CH—CH3

2. Position Isomerism

Different positions of triple bond.

Example:

But-1-yne

CH≡C–CH₂–CH₃

But-2-yne

CH₃–C≡C–CH₃


6. Preparation of Alkynes

Method 1: From Calcium Carbide

Ethyne is prepared industrially by reacting calcium carbide with water.

Reaction:CaC2+2H2OC2H2+Ca(OH)2CaC_2 + 2H_2O \rightarrow C_2H_2 + Ca(OH)_2CaC2​+2H2​O→C2​H2​+Ca(OH)2​

Products:

  • Ethyne
  • Calcium hydroxide

Method 2: From Vicinal Dihalides

Vicinal dihalides contain two halogen atoms on neighbouring carbon atoms.

They undergo double dehydrohalogenation.

Example:CH2BrCH2BrHCCHCH_2Br-CH_2Br \rightarrow HC\equiv CHCH2​Br−CH2​Br→HC≡CH

Steps:

  1. Removal of first HBr → vinyl halide
  2. Removal of second HBr → alkyne

Method 3: From Geminal Dihalides

Geminal dihalides have both halogens attached to the same carbon atom.

They can also form alkynes by elimination reactions.


7. Physical Properties of Alkynes

1. Physical State

  • Lower alkynes are gases.
  • Higher alkynes are liquids or solids.

2. Solubility

  • Insoluble in water
  • Soluble in organic solvents

Reason:

Alkynes are mostly non-polar compounds.


3. Boiling Point

Boiling point increases with:

  • Increase in molecular mass
  • Increase in carbon chain length

8. Chemical Properties of Alkynes

Due to the presence of two π bonds, alkynes undergo addition reactions.

Main reactions:

  1. Hydrogenation
  2. Halogen addition
  3. Addition of hydrogen halides
  4. Hydration
  5. Oxidation

A. Addition of Hydrogen (Hydrogenation)

Alkynes add hydrogen to form alkenes and then alkanes.

Example:

Complete hydrogenation:

CHCH+2H2CH3CH3CH\equiv CH + 2H_2 \rightarrow CH_3-CH_3CH≡CH+2H2​→CH3​−CH3​

(Ethyne → Ethane)

Catalysts:

  • Ni
  • Pt
  • Pd

B. Partial Hydrogenation

Partial reduction gives alkenes.

Using Lindlar Catalyst

Produces:

cis-alkenes

Example:CHCH+H2CH2=CH2CH\equiv CH+H_2 \rightarrow CH_2=CH_2CH≡CH+H2​→CH2​=CH2​


Using Sodium in Liquid Ammonia

Produces:

trans-alkenes


C. Addition of Halogens

Alkynes react with halogens like:

  • Cl₂
  • Br₂

First addition:

Alkyne → Dihaloalkene

Second addition:

Dihaloalkene → Tetrahaloalkane

Example:CHCH+Br2CHBr=CHBrCH\equiv CH+Br_2 \rightarrow CHBr=CHBrCH≡CH+Br2​→CHBr=CHBr


D. Addition of Hydrogen Halides (HX)

HX includes:

  • HCl
  • HBr
  • HI

Example:CHCH+HClCH2=CHClCH\equiv CH+HCl \rightarrow CH_2=CHClCH≡CH+HCl→CH2​=CHCl

Further addition gives:CH3CHCl2CH_3-CHCl_2CH3​−CHCl2​


E. Addition of Water (Hydration)

Alkynes react with water in presence of catalysts.

Catalyst:

  • HgSO₄
  • H₂SO₄

Example:

Ethyne gives ethanal:CHCH+H2OCH3CHOCH\equiv CH+H_2O \rightarrow CH_3CHOCH≡CH+H2​O→CH3​CHO


F. Oxidation of Alkynes

Strong oxidising agents break the triple bond.

Oxidising agents:

  • KMnO₄
  • O₃

Products:

  • Carboxylic acids
  • Carbon dioxide (depending on structure)

9. Acidic Nature of Alkynes

Terminal alkynes contain hydrogen attached to sp carbon.

Example:HCCHHC\equiv CHHC≡CH

This hydrogen is slightly acidic.

Reason:

The carbon is sp hybridised and has high s-character.

Order of acidity:sp>sp2>sp3sp > sp^2 > sp^3sp>sp2>sp3

Therefore:

Alkynes are more acidic than alkenes and alkanes.


10. Test for Terminal Alkynes

Terminal alkynes react with:

1. Ammoniacal Silver Nitrate

Forms silver acetylide precipitate.

2. Ammoniacal Cuprous Chloride

Forms copper acetylide precipitate.

Example:HCCH+AgNO3AgCCAgHC\equiv CH + AgNO_3 \rightarrow AgC\equiv CAgHC≡CH+AgNO3​→AgC≡CAg


11. Comparison: Alkane vs Alkene vs Alkyne

PropertyAlkaneAlkeneAlkyne
SaturationSaturatedUnsaturatedUnsaturated
BondSingleDoubleTriple
FormulaCₙH₂ₙ₊₂CₙH₂ₙCₙH₂ₙ₋₂
Hybridisationsp³sp²sp
Bond angle109.5°120°180°
Main reactionSubstitutionAdditionAddition

Quick Revision Box: Alkynes

⭐ Alkynes contain C≡C bond.
⭐ General formula: CₙH₂ₙ₋₂
⭐ First member: Ethyne (acetylene).
⭐ Carbon is sp hybridised.
⭐ Triple bond contains one σ and two π bonds.
⭐ Terminal alkynes show acidic character.
⭐ Alkynes mainly undergo addition reactions.

Part 4 — Aromatic Hydrocarbons (Benzene)

1. Introduction to Aromatic Hydrocarbons

Definition

Aromatic hydrocarbons are cyclic hydrocarbons that contain one or more benzene-like rings with special stability called aromaticity.

The most important aromatic hydrocarbon is:

Benzene (C₆H₆)

Structure:

  • Six carbon atoms arranged in a ring
  • Each carbon is sp² hybridised
  • Contains a delocalised π-electron system

2. Structure of Benzene

Benzene was discovered by Michael Faraday in 1825.

Molecular formula:C6H6\boxed{C_6H_6}C6​H6​​

It contains:

  • Six carbon atoms
  • Six hydrogen atoms
  • A cyclic planar structure

Representation:

        C
     /     \
    C       C
    ||     ||
    C       C
     \     /
        C

The circle inside the ring represents delocalised π electrons.


3. Kekulé Structure of Benzene

August Kekulé proposed a structure containing:

  • Six carbon atoms in a ring
  • Alternating single and double bonds

However, this structure could not explain all properties of benzene.

Problems with Kekulé structure:

  1. All C–C bonds in benzene have equal length.
  2. Benzene is more stable than expected.
  3. It does not easily undergo addition reactions like alkenes.

4. Modern Concept of Benzene Structure

According to the modern view:

  • Benzene is a planar hexagonal molecule.
  • All carbon atoms are sp² hybridised.
  • Each carbon forms:
    • Two C–C σ bonds
    • One C–H σ bond
  • Unhybridised p-orbitals overlap to form a continuous π-electron cloud.

Important features:

PropertyBenzene
FormulaC₆H₆
ShapePlanar hexagon
Hybridisationsp²
Bond angle120°
π electrons6

5. Aromaticity

Meaning

The special stability shown by benzene and similar compounds is called aromaticity.

A compound is aromatic when it satisfies:

Huckel’s Rule

A cyclic compound is aromatic if it contains:(4n+2)π electrons(4n+2)\pi \text{ electrons}(4n+2)π electrons

where:

n = 0, 1, 2, 3…

For benzene:

Number of π electrons = 64(1)+2=64(1)+2=64(1)+2=6

Therefore benzene is aromatic.


6. Preparation of Benzene

1. From Ethyne (Acetylene)

Three molecules of ethyne combine to form benzene.

Reaction:3HCCHC6H63HC\equiv CH \rightarrow C_6H_63HC≡CH→C6​H6​

This reaction is called:

Cyclotrimerisation of ethyne


2. From Sodium Benzoate

Sodium benzoate on heating with soda lime gives benzene.

Reaction:C6H5COONaC6H6C_6H_5COONa \rightarrow C_6H_6C6​H5​COONa→C6​H6​


3. From Phenol

Phenol reacts with zinc dust to produce benzene.

Reaction:C6H5OH+ZnC6H6+ZnOC_6H_5OH + Zn \rightarrow C_6H_6 + ZnOC6​H5​OH+Zn→C6​H6​+ZnO


7. Physical Properties of Benzene

1. Physical State

  • Benzene is a colourless liquid.
  • It has a characteristic smell.

2. Solubility

  • Insoluble in water
  • Soluble in organic solvents

3. Boiling Point

Boiling point:

Approximately 80°C


8. Chemical Properties of Benzene

Benzene is highly stable because of aromaticity.

It mainly undergoes:

Electrophilic Substitution Reactions

In these reactions, hydrogen atoms of benzene are replaced by electrophiles.

General reaction:C6H6+E+C6H5E+H+C_6H_6 + E^+ \rightarrow C_6H_5E + H^+C6​H6​+E+→C6​H5​E+H+


9. Mechanism of Electrophilic Substitution

The reaction occurs in three steps:


Step 1: Generation of Electrophile

An electrophile (electron-loving species) is produced.

Examples:

  • NO₂⁺
  • Br⁺
  • Cl⁺

Step 2: Formation of Carbocation Intermediate

The electrophile attacks the benzene ring.

A temporary loss of aromaticity occurs.


Step 3: Removal of Hydrogen Ion

The ring regains aromaticity.

Final substituted benzene is formed.


10. Important Electrophilic Substitution Reactions


A. Nitration of Benzene

Benzene reacts with concentrated nitric acid in presence of concentrated sulphuric acid.

Reaction:C6H6+HNO3C6H5NO2+H2OC_6H_6+HNO_3 \rightarrow C_6H_5NO_2+H_2OC6​H6​+HNO3​→C6​H5​NO2​+H2​O

Product:

Nitrobenzene

Electrophile:NO2+NO_2^+NO2+​


B. Halogenation of Benzene

Benzene reacts with chlorine or bromine in presence of Lewis acid catalyst.

Catalysts:

  • FeCl₃
  • FeBr₃

Example:C6H6+Cl2C6H5Cl+HClC_6H_6+Cl_2 \rightarrow C_6H_5Cl+HClC6​H6​+Cl2​→C6​H5​Cl+HCl

Product:

Chlorobenzene


C. Sulphonation of Benzene

Benzene reacts with fuming sulphuric acid.

Reaction:C6H6+H2SO4C6H5SO3H+H2OC_6H_6+H_2SO_4 \rightarrow C_6H_5SO_3H+H_2OC6​H6​+H2​SO4​→C6​H5​SO3​H+H2​O

Product:

Benzenesulphonic acid


D. Friedel-Crafts Alkylation

Benzene reacts with alkyl halides in presence of aluminium chloride.

Example:C6H6+CH3ClC6H5CH3C_6H_6+CH_3Cl \rightarrow C_6H_5CH_3C6​H6​+CH3​Cl→C6​H5​CH3​

Product:

Toluene

Catalyst:

AlCl₃


E. Friedel-Crafts Acylation

Benzene reacts with acyl chlorides.

Example:C6H6+CH3COClC6H5COCH3C_6H_6+CH_3COCl \rightarrow C_6H_5COCH_3C6​H6​+CH3​COCl→C6​H5​COCH3​

Product:

Acetophenone


11. Addition Reactions of Benzene

Although benzene prefers substitution reactions, under severe conditions it can undergo addition.

Hydrogenation

Benzene reacts with hydrogen in presence of nickel catalyst.

Reaction:C6H6+3H2C6H12C_6H_6+3H_2 \rightarrow C_6H_{12}C6​H6​+3H2​→C6​H12​

Product:

Cyclohexane


12. Oxidation of Benzene

Benzene is resistant to oxidation due to aromatic stability.

However, side chains attached to benzene can be oxidised.

Example:

Toluene:C6H5CH3C6H5COOHC_6H_5CH_3 \rightarrow C_6H_5COOHC6​H5​CH3​→C6​H5​COOH

Product:

Benzoic acid


13. Directive Influence of Substituents

When a group is already attached to benzene, it affects where the next substitution occurs.

Two types:

1. Ortho-Para Directing Groups

They direct incoming groups to:

  • Ortho position (2-position)
  • Para position (4-position)

Examples:

  • –CH₃
  • –OH
  • –NH₂

2. Meta Directing Groups

They direct incoming groups to:

  • Meta position (3-position)

Examples:

  • –NO₂
  • –COOH
  • –SO₃H

14. Uses of Benzene

Benzene is used in the manufacture of:

  • Plastics
  • Synthetic fibres
  • Dyes
  • Medicines
  • Detergents

15. Toxicity of Benzene

Benzene exposure can be harmful.

Important points:

  • Benzene vapours are toxic.
  • Long-term exposure can affect health.
  • It is considered a carcinogenic substance.

Quick Revision Box: Aromatic Hydrocarbons

⭐ Benzene formula = C₆H₆
⭐ Carbon atoms are sp² hybridised.
⭐ Benzene contains 6 π electrons.
⭐ Follows Huckel’s rule (4n+2).
⭐ Main reaction = Electrophilic substitution.
⭐ Common reactions:

  • Nitration
  • Halogenation
  • Sulphonation
  • Friedel-Crafts reactions

Part 5 — Complete Chapter Revision

1. Important General Formulae of Hydrocarbons

TypeNatureGeneral FormulaExample
AlkaneSaturatedCₙH₂ₙ₊₂Methane (CH₄)
AlkeneUnsaturatedCₙH₂ₙEthene (C₂H₄)
AlkyneUnsaturatedCₙH₂ₙ₋₂Ethyne (C₂H₂)
Aromatic hydrocarbonBenzene typeC₆H₆Benzene

2. Important Hybridisation Table

CompoundCarbon HybridisationGeometryBond Angle
Alkanesp³Tetrahedral109.5°
Alkenesp²Trigonal planar120°
AlkynespLinear180°
Benzenesp²Planar hexagonal120°

3. Bond Comparison

BondBonds Present
Single bond (C–C)1 σ bond
Double bond (C=C)1 σ + 1 π bond
Triple bond (C≡C)1 σ + 2 π bonds

4. Important Rules


A. Markovnikov’s Rule

Statement:

When an unsymmetrical reagent adds to an unsymmetrical alkene, the hydrogen atom attaches to the carbon already having more hydrogen atoms.

Example:

Propene + HBr:CH3CH=CH2+HBrCH_3-CH=CH_2 + HBrCH3​−CH=CH2​+HBr

Major product:CH3CHBrCH3CH_3-CHBr-CH_3CH3​−CHBr−CH3​

Product:

2-Bromopropane


Exception: Anti-Markovnikov Addition

In presence of peroxide, HBr adds opposite to Markovnikov’s rule.

Example:

Propene + HBr + peroxide

Product:

1-Bromopropane


B. Huckel’s Rule

A compound is aromatic when it has:(4n+2)π electrons(4n+2)\pi \text{ electrons}(4n+2)π electrons

Conditions:

  1. Cyclic structure
  2. Planar molecule
  3. Continuous overlap of p-orbitals
  4. Number of π electrons = 4n+2

Example:

Benzene:6π electrons6\pi\ electrons6π electrons

For n = 1:4(1)+2=64(1)+2=64(1)+2=6

Therefore benzene is aromatic.


5. Important Reactions of Alkanes

1. Combustion

Alkanes burn in oxygen.

Example:CH4+2O2CO2+2H2O+heatCH_4+2O_2 \rightarrow CO_2+2H_2O+\text{heat}CH4​+2O2​→CO2​+2H2​O+heat

Use:

  • Fuels
  • Energy production

2. Halogenation

Alkanes react with chlorine or bromine in sunlight.

Example:CH4+Cl2hvCH3Cl+HClCH_4+Cl_2 \xrightarrow{hv} CH_3Cl+HClCH4​+Cl2​hv​CH3​Cl+HCl

Reaction type:

Free radical substitution


Free Radical Substitution Mechanism

Step 1: Initiation

Formation of radicals by breaking Cl₂ molecule:Cl2hv2ClCl_2 \xrightarrow{hv} 2Cl^\bulletCl2​hv​2Cl∙


Step 2: Propagation

Radicals react with methane molecules.


Step 3: Termination

Radicals combine to form stable molecules.


6. Important Reactions of Alkenes

1. Hydrogenation

Alkene + Hydrogen → Alkane

Catalyst:

Ni/Pt/Pd

Example:CH2=CH2+H2CH3CH3CH_2=CH_2+H_2 \rightarrow CH_3CH_3CH2​=CH2​+H2​→CH3​CH3​


2. Halogen Addition

Example:CH2=CH2+Br2CH2BrCH2BrCH_2=CH_2+Br_2 \rightarrow CH_2Br-CH_2BrCH2​=CH2​+Br2​→CH2​Br−CH2​Br

Test:

Bromine water gets decolourised.


3. Hydration

Addition of water forms alcohol.

Example:CH2=CH2+H2OCH3CH2OHCH_2=CH_2+H_2O \rightarrow CH_3CH_2OHCH2​=CH2​+H2​O→CH3​CH2​OH

Product:

Ethanol


4. Ozonolysis

Ozone breaks the double bond.

Used to determine:

  • Position of double bond

5. Polymerisation

Small molecules combine to form polymers.

Example:

Ethene:n(CH2=CH2)(CH2CH2)nn(CH_2=CH_2) \rightarrow (-CH_2-CH_2-)_nn(CH2​=CH2​)→(−CH2​−CH2​−)n​

Product:

Polyethylene


7. Important Reactions of Alkynes

1. Hydrogenation

Alkyne → Alkene → Alkane

Example:CHCH+2H2CH3CH3CH\equiv CH+2H_2 \rightarrow CH_3CH_3CH≡CH+2H2​→CH3​CH3​


2. Addition of Halogens

Example:CHCH+Br2CHBr=CHBrCH\equiv CH+Br_2 \rightarrow CHBr=CHBrCH≡CH+Br2​→CHBr=CHBr


3. Hydration

Ethyne gives ethanal.CHCH+H2OCH3CHOCH\equiv CH+H_2O \rightarrow CH_3CHOCH≡CH+H2​O→CH3​CHO

Catalyst:

HgSO₄/H₂SO₄


8. Important Reactions of Benzene

1. Nitration

Reagents:

  • Concentrated HNO₃
  • Concentrated H₂SO₄

Reaction:C6H6+HNO3C6H5NO2+H2OC_6H_6+HNO_3 \rightarrow C_6H_5NO_2+H_2OC6​H6​+HNO3​→C6​H5​NO2​+H2​O

Product:

Nitrobenzene


2. Halogenation

Reagents:

  • Cl₂/FeCl₃
  • Br₂/FeBr₃

Example:C6H6+Cl2C6H5Cl+HClC_6H_6+Cl_2 \rightarrow C_6H_5Cl+HClC6​H6​+Cl2​→C6​H5​Cl+HCl

Product:

Chlorobenzene


3. Sulphonation

Reagent:

Fuming H₂SO₄

Product:

Benzenesulphonic acid


4. Friedel-Crafts Alkylation

Reagents:

  • Alkyl halide
  • AlCl₃

Example:C6H6+CH3ClC6H5CH3C_6H_6+CH_3Cl \rightarrow C_6H_5CH_3C6​H6​+CH3​Cl→C6​H5​CH3​

Product:

Toluene


9. Important Named Reactions

1. Wurtz Reaction

Preparation of higher alkanes.

General reaction:2RX+2NaRR+2NaX2R-X+2Na \rightarrow R-R+2NaX2R−X+2Na→R−R+2NaX

Reagent:

Sodium + dry ether


2. Kolbe’s Electrolysis

Preparation of alkanes by electrolysis of sodium salts of carboxylic acids.

Example:

Sodium acetate gives ethane.


3. Friedel-Crafts Reaction

Used for introducing alkyl or acyl groups into benzene.

Catalyst:

AlCl₃

Types:

  • Alkylation
  • Acylation

4. Ozonolysis

Used for locating double bond position in alkenes.


10. Important Tests

Bromine Water Test

Purpose:

Detection of unsaturation.

Observation:

  • Alkene/alkyne decolourise bromine water.
  • Alkane does not react easily.

Baeyer’s Test

Reagent:

Cold dilute KMnO₄

Observation:

Purple colour disappears due to oxidation of unsaturated compounds.


Test for Terminal Alkynes

Reagents:

  1. Ammoniacal AgNO₃
  2. Ammoniacal CuCl

Formation of precipitate confirms terminal alkyne.


11. Important Differences

Alkane vs Alkene

AlkaneAlkene
SaturatedUnsaturated
Only single bondsContains double bond
Less reactiveMore reactive
Substitution reactionsAddition reactions
CₙH₂ₙ₊₂CₙH₂ₙ

Alkene vs Alkyne

AlkeneAlkyne
C=C bondC≡C bond
sp² hybridisationsp hybridisation
120° angle180° angle
One π bondTwo π bonds

12. One-Day Revision Sheet

Remember:

✅ Alkane formula → CₙH₂ₙ₊₂
✅ Alkene formula → CₙH₂ₙ
✅ Alkyne formula → CₙH₂ₙ₋₂
✅ Methane → first alkane
✅ Ethene → first alkene
✅ Ethyne → first alkyne
✅ Benzene → aromatic hydrocarbon
✅ Alkane reaction → substitution
✅ Alkene reaction → addition
✅ Benzene reaction → electrophilic substitution
✅ C=C contains σ + π bond
✅ C≡C contains σ + 2π bonds
✅ Benzene follows Huckel’s rule