Q.(i) Discuss the concept of hybridisation. What are its different types in a carbon atom.
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Start your 14-day free trial to unlock the full solution →Hybridisation is the mixing of atomic orbitals to form equivalent hybrid orbitals for bonding. Carbon exhibits , , and hybridisation depending on the number of sigma bonds and lone pairs. The starred carbons in the given molecules are: (a) and ,
(b) ,
(c) ,
(d) , (e) .
The Concept of Hybridisation
Hybridisation is a theoretical model that explains how atoms, especially carbon, form bonds with specific geometries. The central idea is that atomic orbitals (like and ) of similar energy mix together to create new, equivalent hybrid orbitals. These hybrid orbitals are directed in space to minimise repulsion, giving the molecule its shape.
For carbon, the ground state electron configuration is . With only two unpaired electrons, carbon would form only two bonds — but we know it forms four. Hybridisation resolves this: one electron is promoted to the empty orbital, giving four unpaired electrons (). These four orbitals then mix to form four equivalent hybrid orbitals, each with 25% -character and 75% -character, arranged tetrahedrally at .
The type of hybridisation depends on the number of sigma bonds and lone pairs around the atom. The key rule: count the number of sigma bonds and lone pairs — that number equals the number of hybrid orbitals needed.
Steric Number = Number of sigma bonds + Number of lone pairs
- Steric number 4 → hybridisation (tetrahedral)
- Steric number 3 → hybridisation (trigonal planar)
- Steric number 2 → hybridisation (linear)
A double bond consists of one sigma bond and one pi bond; a triple bond has one sigma and two pi bonds. Pi bonds use unhybridised orbitals, so they do not count toward the steric number.
Types of Hybridisation in Carbon
Carbon can exhibit three types:
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hybridisation: One and three orbitals mix to form four orbitals. Each forms a sigma bond. Geometry: tetrahedral, bond angle . Example: methane ().
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hybridisation: One and two orbitals mix to form three orbitals. The remaining unhybridised orbital forms a pi bond. Geometry: trigonal planar, bond angle . Example: ethene ().
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hybridisation: One and one orbital mix to form two orbitals. Two unhybridised orbitals form two pi bonds. Geometry: linear, bond angle . Example: ethyne ().
Determining Hybridisation of Starred Carbons
Now we apply this to each molecule. For each starred carbon, count its sigma bonds (single bonds count as one sigma; double bonds have one sigma and one pi; triple bonds have one sigma and two pi). No lone pairs on carbon here.
(a)
- First starred carbon (): It is part of a double bond with the next carbon. It forms three sigma bonds (two to H atoms, one to the adjacent C) and one pi bond (the second bond of the double bond). Steric number = 3 sigma bonds = 3. Hybridisation: .
- Second starred carbon (): It has a double bond to oxygen (one sigma, one pi) and a single bond to the adjacent carbon (sigma) and a single bond to the O in the —O—H group (sigma). That's three sigma bonds total. Steric number = 3. Hybridisation: . …
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