14.1 Saturated Hydrocarbons- Alkanes
🎯 Learning outcomes
By the end of this chapter, students should be able to:
- Define and describe saturated hydrocarbons (alkanes).
- Show preparation of alkanes from haloalkanes (reduction and Wurtz reaction), decarboxylation, and catalytic hydrogenation of alkenes and alkynes.
- Explain the chemical properties of alkanes.
Classification of Organic Compounds
Alkanes
Alkanes are the simplest hydrocarbons, having carbon–carbon single bonds. These are called saturated hydrocarbons as they cannot add more hydrogen. They are also called paraffins, as they are unreactive.
General Methods of Preparation
1. From alkenes and alkynes (by catalytic hydrogenation)
Unsaturated hydrocarbons (alkenes and alkynes) undergo addition with hydrogen in the presence of finely divided nickel (Ni), platinum (Pt), or palladium (Pd) as a catalyst at a temperature of about 200–300°C, producing alkanes.
2. From haloalkanes
a. Reduction
Haloalkanes are reduced to alkanes with lithium aluminium hydride (LiAlH4). E.g.,
b. Wurtz reaction
When a haloalkane is heated with sodium in dry ether, an alkane with double the number of carbon atoms is obtained; this is called the Wurtz reaction.
3. From sodium salt of carboxylic acids
A carboxylic acid first forms its sodium salt:
By soda lime decarboxylation
The sodium salt of a carboxylic acid (sodium alkanoate) is heated with soda lime (i.e., NaOH and CaO), and an alkane with one less carbon is obtained. E.g.,
Chemical Properties
Alkanes are highly unreactive organic compounds because of strong and nonpolar carbon–carbon bonds. Even carbon–hydrogen bonds are only very slightly polar, so these do not react easily. But they undergo a few reactions when exposed to heat or light.
1. Substitution reactions
Halogenation
When alkanes are treated with a limited amount of halogen in the presence of sunlight, halogen atoms successively replace the hydrogen atoms. E.g.,
The iodination of alkanes is reversible. The yield is increased in the presence of concentrated HNO3.
Nitration
Alkanes, when boiled with concentrated nitric acid, yield nitroalkanes. Introducing the nitro (–NO2) group into an organic compound is called nitration.
A mixture of all possible nitroalkanes is obtained by C–C bond fission. For example, nitration of propane gives:
Sulphonation
Branched-chain alkanes and higher alkanes with six or more carbon atoms undergo sulphonation with concentrated and fuming sulphuric acid, giving alkane sulphonic acid.
2. Oxidation (Combustion)
Alkanes are quite inert towards common oxidising agents and do not decolourise alkaline KMnO4. However, when burnt in excess air, alkanes are completely oxidised into CO2 and H2O with the evolution of a large amount of energy. This is called combustion.
In a limited supply of air, some CO and even carbon are formed.
Convert methane to ethane.
Solution