Q.What is meant by hybridisation of atomic orbitals? Describe the shapes of , , hybrid orbitals.
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Start your 14-day free trial to unlock the full solution →Hybridisation is the mathematical mixing of atomic orbitals to form new, equivalent hybrid orbitals that better explain molecular geometry and bonding. The three common types — (linear), (trigonal planar), and (tetrahedral) — each have distinct shapes and bond angles.
The Concept Behind Hybridisation
Valence bond theory faced a puzzle in the early 20th century. Consider carbon: its ground-state electronic configuration is , with only two unpaired electrons in the orbitals. Yet carbon forms four equivalent bonds in methane (), not two. Even if we promote an electron from to to get four unpaired electrons, we'd expect three bonds from orbitals (mutually perpendicular) and one from an orbital (spherical) — but experiment shows all four C–H bonds in methane are identical, pointing toward the corners of a tetrahedron at .
Linus Pauling resolved this by proposing hybridisation: the idea that atomic orbitals on the same atom can mix mathematically to produce a new set of hybrid orbitals. These hybrids are equivalent in energy, have specific directional character, and their geometry matches observed molecular shapes. The number and type of atomic orbitals mixed equals the number of hybrid orbitals formed.
Think of it as redistributing electron density: instead of using "pure" and orbitals with their own shapes, the atom creates custom orbitals optimized for bonding in particular directions.
The Three Principal Hybridisation Schemes
1. Hybridisation (Linear geometry)
One orbital mixes with one orbital to form two equivalent hybrid orbitals.
Formation:
Shape and orientation:
Each hybrid has two lobes — one large lobe pointing in one direction and a smaller lobe on the opposite side. The two hybrids orient themselves apart along a straight line to minimize repulsion, giving linear geometry.
Characteristics:
- Bond angle:
- Each hybrid has 50% character and 50% character
- Two unhybridised orbitals remain perpendicular to the bonding axis (available for bonding)
Example: Beryllium in or carbon in acetylene (). In acetylene, each carbon uses two hybrids for bonds (one C–H, one C–C), while the two remaining orbitals form two bonds in the triple bond.
2. Hybridisation (Trigonal planar geometry)
One orbital mixes with two orbitals to form three equivalent hybrid orbitals.
Formation:
Shape and orientation:
Each hybrid orbital has a large lobe and a small lobe, similar to but with different proportions. The three hybrids lie in the same plane, oriented apart in a trigonal planar arrangement.
Characteristics:
- Bond angle:
- Each hybrid has 33.3% character and 66.7% character
- One unhybridised orbital remains perpendicular to the plane (available for bonding)
Example: Boron in or carbon in ethene (). In ethene, each carbon uses three hybrids for bonds (two C–H, one C–C), and the remaining orbital forms the bond of the double bond.
3. Hybridisation (Tetrahedral geometry)
One orbital mixes with three orbitals to form four equivalent hybrid orbitals.
Formation:
Shape and orientation:
Each hybrid has one large lobe and one small lobe. The four hybrids point toward the corners of a regular tetrahedron, maximizing separation. …
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